ib_srpt.c 104 KB

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  1. /*
  2. * Copyright (c) 2006 - 2009 Mellanox Technology Inc. All rights reserved.
  3. * Copyright (C) 2008 - 2011 Bart Van Assche <bvanassche@acm.org>.
  4. *
  5. * This software is available to you under a choice of one of two
  6. * licenses. You may choose to be licensed under the terms of the GNU
  7. * General Public License (GPL) Version 2, available from the file
  8. * COPYING in the main directory of this source tree, or the
  9. * OpenIB.org BSD license below:
  10. *
  11. * Redistribution and use in source and binary forms, with or
  12. * without modification, are permitted provided that the following
  13. * conditions are met:
  14. *
  15. * - Redistributions of source code must retain the above
  16. * copyright notice, this list of conditions and the following
  17. * disclaimer.
  18. *
  19. * - Redistributions in binary form must reproduce the above
  20. * copyright notice, this list of conditions and the following
  21. * disclaimer in the documentation and/or other materials
  22. * provided with the distribution.
  23. *
  24. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
  25. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
  26. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
  27. * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
  28. * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
  29. * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
  30. * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  31. * SOFTWARE.
  32. *
  33. */
  34. #include <linux/module.h>
  35. #include <linux/init.h>
  36. #include <linux/slab.h>
  37. #include <linux/err.h>
  38. #include <linux/ctype.h>
  39. #include <linux/kthread.h>
  40. #include <linux/string.h>
  41. #include <linux/delay.h>
  42. #include <linux/atomic.h>
  43. #include <scsi/scsi_tcq.h>
  44. #include <target/configfs_macros.h>
  45. #include <target/target_core_base.h>
  46. #include <target/target_core_fabric_configfs.h>
  47. #include <target/target_core_fabric.h>
  48. #include <target/target_core_configfs.h>
  49. #include "ib_srpt.h"
  50. /* Name of this kernel module. */
  51. #define DRV_NAME "ib_srpt"
  52. #define DRV_VERSION "2.0.0"
  53. #define DRV_RELDATE "2011-02-14"
  54. #define SRPT_ID_STRING "Linux SRP target"
  55. #undef pr_fmt
  56. #define pr_fmt(fmt) DRV_NAME " " fmt
  57. MODULE_AUTHOR("Vu Pham and Bart Van Assche");
  58. MODULE_DESCRIPTION("InfiniBand SCSI RDMA Protocol target "
  59. "v" DRV_VERSION " (" DRV_RELDATE ")");
  60. MODULE_LICENSE("Dual BSD/GPL");
  61. /*
  62. * Global Variables
  63. */
  64. static u64 srpt_service_guid;
  65. static DEFINE_SPINLOCK(srpt_dev_lock); /* Protects srpt_dev_list. */
  66. static LIST_HEAD(srpt_dev_list); /* List of srpt_device structures. */
  67. static unsigned srp_max_req_size = DEFAULT_MAX_REQ_SIZE;
  68. module_param(srp_max_req_size, int, 0444);
  69. MODULE_PARM_DESC(srp_max_req_size,
  70. "Maximum size of SRP request messages in bytes.");
  71. static int srpt_srq_size = DEFAULT_SRPT_SRQ_SIZE;
  72. module_param(srpt_srq_size, int, 0444);
  73. MODULE_PARM_DESC(srpt_srq_size,
  74. "Shared receive queue (SRQ) size.");
  75. static int srpt_get_u64_x(char *buffer, struct kernel_param *kp)
  76. {
  77. return sprintf(buffer, "0x%016llx", *(u64 *)kp->arg);
  78. }
  79. module_param_call(srpt_service_guid, NULL, srpt_get_u64_x, &srpt_service_guid,
  80. 0444);
  81. MODULE_PARM_DESC(srpt_service_guid,
  82. "Using this value for ioc_guid, id_ext, and cm_listen_id"
  83. " instead of using the node_guid of the first HCA.");
  84. static struct ib_client srpt_client;
  85. static struct target_fabric_configfs *srpt_target;
  86. static void srpt_release_channel(struct srpt_rdma_ch *ch);
  87. static int srpt_queue_status(struct se_cmd *cmd);
  88. /**
  89. * opposite_dma_dir() - Swap DMA_TO_DEVICE and DMA_FROM_DEVICE.
  90. */
  91. static inline
  92. enum dma_data_direction opposite_dma_dir(enum dma_data_direction dir)
  93. {
  94. switch (dir) {
  95. case DMA_TO_DEVICE: return DMA_FROM_DEVICE;
  96. case DMA_FROM_DEVICE: return DMA_TO_DEVICE;
  97. default: return dir;
  98. }
  99. }
  100. /**
  101. * srpt_sdev_name() - Return the name associated with the HCA.
  102. *
  103. * Examples are ib0, ib1, ...
  104. */
  105. static inline const char *srpt_sdev_name(struct srpt_device *sdev)
  106. {
  107. return sdev->device->name;
  108. }
  109. static enum rdma_ch_state srpt_get_ch_state(struct srpt_rdma_ch *ch)
  110. {
  111. unsigned long flags;
  112. enum rdma_ch_state state;
  113. spin_lock_irqsave(&ch->spinlock, flags);
  114. state = ch->state;
  115. spin_unlock_irqrestore(&ch->spinlock, flags);
  116. return state;
  117. }
  118. static enum rdma_ch_state
  119. srpt_set_ch_state(struct srpt_rdma_ch *ch, enum rdma_ch_state new_state)
  120. {
  121. unsigned long flags;
  122. enum rdma_ch_state prev;
  123. spin_lock_irqsave(&ch->spinlock, flags);
  124. prev = ch->state;
  125. ch->state = new_state;
  126. spin_unlock_irqrestore(&ch->spinlock, flags);
  127. return prev;
  128. }
  129. /**
  130. * srpt_test_and_set_ch_state() - Test and set the channel state.
  131. *
  132. * Returns true if and only if the channel state has been set to the new state.
  133. */
  134. static bool
  135. srpt_test_and_set_ch_state(struct srpt_rdma_ch *ch, enum rdma_ch_state old,
  136. enum rdma_ch_state new)
  137. {
  138. unsigned long flags;
  139. enum rdma_ch_state prev;
  140. spin_lock_irqsave(&ch->spinlock, flags);
  141. prev = ch->state;
  142. if (prev == old)
  143. ch->state = new;
  144. spin_unlock_irqrestore(&ch->spinlock, flags);
  145. return prev == old;
  146. }
  147. /**
  148. * srpt_event_handler() - Asynchronous IB event callback function.
  149. *
  150. * Callback function called by the InfiniBand core when an asynchronous IB
  151. * event occurs. This callback may occur in interrupt context. See also
  152. * section 11.5.2, Set Asynchronous Event Handler in the InfiniBand
  153. * Architecture Specification.
  154. */
  155. static void srpt_event_handler(struct ib_event_handler *handler,
  156. struct ib_event *event)
  157. {
  158. struct srpt_device *sdev;
  159. struct srpt_port *sport;
  160. sdev = ib_get_client_data(event->device, &srpt_client);
  161. if (!sdev || sdev->device != event->device)
  162. return;
  163. pr_debug("ASYNC event= %d on device= %s\n", event->event,
  164. srpt_sdev_name(sdev));
  165. switch (event->event) {
  166. case IB_EVENT_PORT_ERR:
  167. if (event->element.port_num <= sdev->device->phys_port_cnt) {
  168. sport = &sdev->port[event->element.port_num - 1];
  169. sport->lid = 0;
  170. sport->sm_lid = 0;
  171. }
  172. break;
  173. case IB_EVENT_PORT_ACTIVE:
  174. case IB_EVENT_LID_CHANGE:
  175. case IB_EVENT_PKEY_CHANGE:
  176. case IB_EVENT_SM_CHANGE:
  177. case IB_EVENT_CLIENT_REREGISTER:
  178. case IB_EVENT_GID_CHANGE:
  179. /* Refresh port data asynchronously. */
  180. if (event->element.port_num <= sdev->device->phys_port_cnt) {
  181. sport = &sdev->port[event->element.port_num - 1];
  182. if (!sport->lid && !sport->sm_lid)
  183. schedule_work(&sport->work);
  184. }
  185. break;
  186. default:
  187. printk(KERN_ERR "received unrecognized IB event %d\n",
  188. event->event);
  189. break;
  190. }
  191. }
  192. /**
  193. * srpt_srq_event() - SRQ event callback function.
  194. */
  195. static void srpt_srq_event(struct ib_event *event, void *ctx)
  196. {
  197. printk(KERN_INFO "SRQ event %d\n", event->event);
  198. }
  199. /**
  200. * srpt_qp_event() - QP event callback function.
  201. */
  202. static void srpt_qp_event(struct ib_event *event, struct srpt_rdma_ch *ch)
  203. {
  204. pr_debug("QP event %d on cm_id=%p sess_name=%s state=%d\n",
  205. event->event, ch->cm_id, ch->sess_name, srpt_get_ch_state(ch));
  206. switch (event->event) {
  207. case IB_EVENT_COMM_EST:
  208. ib_cm_notify(ch->cm_id, event->event);
  209. break;
  210. case IB_EVENT_QP_LAST_WQE_REACHED:
  211. if (srpt_test_and_set_ch_state(ch, CH_DRAINING,
  212. CH_RELEASING))
  213. srpt_release_channel(ch);
  214. else
  215. pr_debug("%s: state %d - ignored LAST_WQE.\n",
  216. ch->sess_name, srpt_get_ch_state(ch));
  217. break;
  218. default:
  219. printk(KERN_ERR "received unrecognized IB QP event %d\n",
  220. event->event);
  221. break;
  222. }
  223. }
  224. /**
  225. * srpt_set_ioc() - Helper function for initializing an IOUnitInfo structure.
  226. *
  227. * @slot: one-based slot number.
  228. * @value: four-bit value.
  229. *
  230. * Copies the lowest four bits of value in element slot of the array of four
  231. * bit elements called c_list (controller list). The index slot is one-based.
  232. */
  233. static void srpt_set_ioc(u8 *c_list, u32 slot, u8 value)
  234. {
  235. u16 id;
  236. u8 tmp;
  237. id = (slot - 1) / 2;
  238. if (slot & 0x1) {
  239. tmp = c_list[id] & 0xf;
  240. c_list[id] = (value << 4) | tmp;
  241. } else {
  242. tmp = c_list[id] & 0xf0;
  243. c_list[id] = (value & 0xf) | tmp;
  244. }
  245. }
  246. /**
  247. * srpt_get_class_port_info() - Copy ClassPortInfo to a management datagram.
  248. *
  249. * See also section 16.3.3.1 ClassPortInfo in the InfiniBand Architecture
  250. * Specification.
  251. */
  252. static void srpt_get_class_port_info(struct ib_dm_mad *mad)
  253. {
  254. struct ib_class_port_info *cif;
  255. cif = (struct ib_class_port_info *)mad->data;
  256. memset(cif, 0, sizeof *cif);
  257. cif->base_version = 1;
  258. cif->class_version = 1;
  259. cif->resp_time_value = 20;
  260. mad->mad_hdr.status = 0;
  261. }
  262. /**
  263. * srpt_get_iou() - Write IOUnitInfo to a management datagram.
  264. *
  265. * See also section 16.3.3.3 IOUnitInfo in the InfiniBand Architecture
  266. * Specification. See also section B.7, table B.6 in the SRP r16a document.
  267. */
  268. static void srpt_get_iou(struct ib_dm_mad *mad)
  269. {
  270. struct ib_dm_iou_info *ioui;
  271. u8 slot;
  272. int i;
  273. ioui = (struct ib_dm_iou_info *)mad->data;
  274. ioui->change_id = __constant_cpu_to_be16(1);
  275. ioui->max_controllers = 16;
  276. /* set present for slot 1 and empty for the rest */
  277. srpt_set_ioc(ioui->controller_list, 1, 1);
  278. for (i = 1, slot = 2; i < 16; i++, slot++)
  279. srpt_set_ioc(ioui->controller_list, slot, 0);
  280. mad->mad_hdr.status = 0;
  281. }
  282. /**
  283. * srpt_get_ioc() - Write IOControllerprofile to a management datagram.
  284. *
  285. * See also section 16.3.3.4 IOControllerProfile in the InfiniBand
  286. * Architecture Specification. See also section B.7, table B.7 in the SRP
  287. * r16a document.
  288. */
  289. static void srpt_get_ioc(struct srpt_port *sport, u32 slot,
  290. struct ib_dm_mad *mad)
  291. {
  292. struct srpt_device *sdev = sport->sdev;
  293. struct ib_dm_ioc_profile *iocp;
  294. iocp = (struct ib_dm_ioc_profile *)mad->data;
  295. if (!slot || slot > 16) {
  296. mad->mad_hdr.status
  297. = __constant_cpu_to_be16(DM_MAD_STATUS_INVALID_FIELD);
  298. return;
  299. }
  300. if (slot > 2) {
  301. mad->mad_hdr.status
  302. = __constant_cpu_to_be16(DM_MAD_STATUS_NO_IOC);
  303. return;
  304. }
  305. memset(iocp, 0, sizeof *iocp);
  306. strcpy(iocp->id_string, SRPT_ID_STRING);
  307. iocp->guid = cpu_to_be64(srpt_service_guid);
  308. iocp->vendor_id = cpu_to_be32(sdev->dev_attr.vendor_id);
  309. iocp->device_id = cpu_to_be32(sdev->dev_attr.vendor_part_id);
  310. iocp->device_version = cpu_to_be16(sdev->dev_attr.hw_ver);
  311. iocp->subsys_vendor_id = cpu_to_be32(sdev->dev_attr.vendor_id);
  312. iocp->subsys_device_id = 0x0;
  313. iocp->io_class = __constant_cpu_to_be16(SRP_REV16A_IB_IO_CLASS);
  314. iocp->io_subclass = __constant_cpu_to_be16(SRP_IO_SUBCLASS);
  315. iocp->protocol = __constant_cpu_to_be16(SRP_PROTOCOL);
  316. iocp->protocol_version = __constant_cpu_to_be16(SRP_PROTOCOL_VERSION);
  317. iocp->send_queue_depth = cpu_to_be16(sdev->srq_size);
  318. iocp->rdma_read_depth = 4;
  319. iocp->send_size = cpu_to_be32(srp_max_req_size);
  320. iocp->rdma_size = cpu_to_be32(min(sport->port_attrib.srp_max_rdma_size,
  321. 1U << 24));
  322. iocp->num_svc_entries = 1;
  323. iocp->op_cap_mask = SRP_SEND_TO_IOC | SRP_SEND_FROM_IOC |
  324. SRP_RDMA_READ_FROM_IOC | SRP_RDMA_WRITE_FROM_IOC;
  325. mad->mad_hdr.status = 0;
  326. }
  327. /**
  328. * srpt_get_svc_entries() - Write ServiceEntries to a management datagram.
  329. *
  330. * See also section 16.3.3.5 ServiceEntries in the InfiniBand Architecture
  331. * Specification. See also section B.7, table B.8 in the SRP r16a document.
  332. */
  333. static void srpt_get_svc_entries(u64 ioc_guid,
  334. u16 slot, u8 hi, u8 lo, struct ib_dm_mad *mad)
  335. {
  336. struct ib_dm_svc_entries *svc_entries;
  337. WARN_ON(!ioc_guid);
  338. if (!slot || slot > 16) {
  339. mad->mad_hdr.status
  340. = __constant_cpu_to_be16(DM_MAD_STATUS_INVALID_FIELD);
  341. return;
  342. }
  343. if (slot > 2 || lo > hi || hi > 1) {
  344. mad->mad_hdr.status
  345. = __constant_cpu_to_be16(DM_MAD_STATUS_NO_IOC);
  346. return;
  347. }
  348. svc_entries = (struct ib_dm_svc_entries *)mad->data;
  349. memset(svc_entries, 0, sizeof *svc_entries);
  350. svc_entries->service_entries[0].id = cpu_to_be64(ioc_guid);
  351. snprintf(svc_entries->service_entries[0].name,
  352. sizeof(svc_entries->service_entries[0].name),
  353. "%s%016llx",
  354. SRP_SERVICE_NAME_PREFIX,
  355. ioc_guid);
  356. mad->mad_hdr.status = 0;
  357. }
  358. /**
  359. * srpt_mgmt_method_get() - Process a received management datagram.
  360. * @sp: source port through which the MAD has been received.
  361. * @rq_mad: received MAD.
  362. * @rsp_mad: response MAD.
  363. */
  364. static void srpt_mgmt_method_get(struct srpt_port *sp, struct ib_mad *rq_mad,
  365. struct ib_dm_mad *rsp_mad)
  366. {
  367. u16 attr_id;
  368. u32 slot;
  369. u8 hi, lo;
  370. attr_id = be16_to_cpu(rq_mad->mad_hdr.attr_id);
  371. switch (attr_id) {
  372. case DM_ATTR_CLASS_PORT_INFO:
  373. srpt_get_class_port_info(rsp_mad);
  374. break;
  375. case DM_ATTR_IOU_INFO:
  376. srpt_get_iou(rsp_mad);
  377. break;
  378. case DM_ATTR_IOC_PROFILE:
  379. slot = be32_to_cpu(rq_mad->mad_hdr.attr_mod);
  380. srpt_get_ioc(sp, slot, rsp_mad);
  381. break;
  382. case DM_ATTR_SVC_ENTRIES:
  383. slot = be32_to_cpu(rq_mad->mad_hdr.attr_mod);
  384. hi = (u8) ((slot >> 8) & 0xff);
  385. lo = (u8) (slot & 0xff);
  386. slot = (u16) ((slot >> 16) & 0xffff);
  387. srpt_get_svc_entries(srpt_service_guid,
  388. slot, hi, lo, rsp_mad);
  389. break;
  390. default:
  391. rsp_mad->mad_hdr.status =
  392. __constant_cpu_to_be16(DM_MAD_STATUS_UNSUP_METHOD_ATTR);
  393. break;
  394. }
  395. }
  396. /**
  397. * srpt_mad_send_handler() - Post MAD-send callback function.
  398. */
  399. static void srpt_mad_send_handler(struct ib_mad_agent *mad_agent,
  400. struct ib_mad_send_wc *mad_wc)
  401. {
  402. ib_destroy_ah(mad_wc->send_buf->ah);
  403. ib_free_send_mad(mad_wc->send_buf);
  404. }
  405. /**
  406. * srpt_mad_recv_handler() - MAD reception callback function.
  407. */
  408. static void srpt_mad_recv_handler(struct ib_mad_agent *mad_agent,
  409. struct ib_mad_recv_wc *mad_wc)
  410. {
  411. struct srpt_port *sport = (struct srpt_port *)mad_agent->context;
  412. struct ib_ah *ah;
  413. struct ib_mad_send_buf *rsp;
  414. struct ib_dm_mad *dm_mad;
  415. if (!mad_wc || !mad_wc->recv_buf.mad)
  416. return;
  417. ah = ib_create_ah_from_wc(mad_agent->qp->pd, mad_wc->wc,
  418. mad_wc->recv_buf.grh, mad_agent->port_num);
  419. if (IS_ERR(ah))
  420. goto err;
  421. BUILD_BUG_ON(offsetof(struct ib_dm_mad, data) != IB_MGMT_DEVICE_HDR);
  422. rsp = ib_create_send_mad(mad_agent, mad_wc->wc->src_qp,
  423. mad_wc->wc->pkey_index, 0,
  424. IB_MGMT_DEVICE_HDR, IB_MGMT_DEVICE_DATA,
  425. GFP_KERNEL);
  426. if (IS_ERR(rsp))
  427. goto err_rsp;
  428. rsp->ah = ah;
  429. dm_mad = rsp->mad;
  430. memcpy(dm_mad, mad_wc->recv_buf.mad, sizeof *dm_mad);
  431. dm_mad->mad_hdr.method = IB_MGMT_METHOD_GET_RESP;
  432. dm_mad->mad_hdr.status = 0;
  433. switch (mad_wc->recv_buf.mad->mad_hdr.method) {
  434. case IB_MGMT_METHOD_GET:
  435. srpt_mgmt_method_get(sport, mad_wc->recv_buf.mad, dm_mad);
  436. break;
  437. case IB_MGMT_METHOD_SET:
  438. dm_mad->mad_hdr.status =
  439. __constant_cpu_to_be16(DM_MAD_STATUS_UNSUP_METHOD_ATTR);
  440. break;
  441. default:
  442. dm_mad->mad_hdr.status =
  443. __constant_cpu_to_be16(DM_MAD_STATUS_UNSUP_METHOD);
  444. break;
  445. }
  446. if (!ib_post_send_mad(rsp, NULL)) {
  447. ib_free_recv_mad(mad_wc);
  448. /* will destroy_ah & free_send_mad in send completion */
  449. return;
  450. }
  451. ib_free_send_mad(rsp);
  452. err_rsp:
  453. ib_destroy_ah(ah);
  454. err:
  455. ib_free_recv_mad(mad_wc);
  456. }
  457. /**
  458. * srpt_refresh_port() - Configure a HCA port.
  459. *
  460. * Enable InfiniBand management datagram processing, update the cached sm_lid,
  461. * lid and gid values, and register a callback function for processing MADs
  462. * on the specified port.
  463. *
  464. * Note: It is safe to call this function more than once for the same port.
  465. */
  466. static int srpt_refresh_port(struct srpt_port *sport)
  467. {
  468. struct ib_mad_reg_req reg_req;
  469. struct ib_port_modify port_modify;
  470. struct ib_port_attr port_attr;
  471. int ret;
  472. memset(&port_modify, 0, sizeof port_modify);
  473. port_modify.set_port_cap_mask = IB_PORT_DEVICE_MGMT_SUP;
  474. port_modify.clr_port_cap_mask = 0;
  475. ret = ib_modify_port(sport->sdev->device, sport->port, 0, &port_modify);
  476. if (ret)
  477. goto err_mod_port;
  478. ret = ib_query_port(sport->sdev->device, sport->port, &port_attr);
  479. if (ret)
  480. goto err_query_port;
  481. sport->sm_lid = port_attr.sm_lid;
  482. sport->lid = port_attr.lid;
  483. ret = ib_query_gid(sport->sdev->device, sport->port, 0, &sport->gid);
  484. if (ret)
  485. goto err_query_port;
  486. if (!sport->mad_agent) {
  487. memset(&reg_req, 0, sizeof reg_req);
  488. reg_req.mgmt_class = IB_MGMT_CLASS_DEVICE_MGMT;
  489. reg_req.mgmt_class_version = IB_MGMT_BASE_VERSION;
  490. set_bit(IB_MGMT_METHOD_GET, reg_req.method_mask);
  491. set_bit(IB_MGMT_METHOD_SET, reg_req.method_mask);
  492. sport->mad_agent = ib_register_mad_agent(sport->sdev->device,
  493. sport->port,
  494. IB_QPT_GSI,
  495. &reg_req, 0,
  496. srpt_mad_send_handler,
  497. srpt_mad_recv_handler,
  498. sport, 0);
  499. if (IS_ERR(sport->mad_agent)) {
  500. ret = PTR_ERR(sport->mad_agent);
  501. sport->mad_agent = NULL;
  502. goto err_query_port;
  503. }
  504. }
  505. return 0;
  506. err_query_port:
  507. port_modify.set_port_cap_mask = 0;
  508. port_modify.clr_port_cap_mask = IB_PORT_DEVICE_MGMT_SUP;
  509. ib_modify_port(sport->sdev->device, sport->port, 0, &port_modify);
  510. err_mod_port:
  511. return ret;
  512. }
  513. /**
  514. * srpt_unregister_mad_agent() - Unregister MAD callback functions.
  515. *
  516. * Note: It is safe to call this function more than once for the same device.
  517. */
  518. static void srpt_unregister_mad_agent(struct srpt_device *sdev)
  519. {
  520. struct ib_port_modify port_modify = {
  521. .clr_port_cap_mask = IB_PORT_DEVICE_MGMT_SUP,
  522. };
  523. struct srpt_port *sport;
  524. int i;
  525. for (i = 1; i <= sdev->device->phys_port_cnt; i++) {
  526. sport = &sdev->port[i - 1];
  527. WARN_ON(sport->port != i);
  528. if (ib_modify_port(sdev->device, i, 0, &port_modify) < 0)
  529. printk(KERN_ERR "disabling MAD processing failed.\n");
  530. if (sport->mad_agent) {
  531. ib_unregister_mad_agent(sport->mad_agent);
  532. sport->mad_agent = NULL;
  533. }
  534. }
  535. }
  536. /**
  537. * srpt_alloc_ioctx() - Allocate an SRPT I/O context structure.
  538. */
  539. static struct srpt_ioctx *srpt_alloc_ioctx(struct srpt_device *sdev,
  540. int ioctx_size, int dma_size,
  541. enum dma_data_direction dir)
  542. {
  543. struct srpt_ioctx *ioctx;
  544. ioctx = kmalloc(ioctx_size, GFP_KERNEL);
  545. if (!ioctx)
  546. goto err;
  547. ioctx->buf = kmalloc(dma_size, GFP_KERNEL);
  548. if (!ioctx->buf)
  549. goto err_free_ioctx;
  550. ioctx->dma = ib_dma_map_single(sdev->device, ioctx->buf, dma_size, dir);
  551. if (ib_dma_mapping_error(sdev->device, ioctx->dma))
  552. goto err_free_buf;
  553. return ioctx;
  554. err_free_buf:
  555. kfree(ioctx->buf);
  556. err_free_ioctx:
  557. kfree(ioctx);
  558. err:
  559. return NULL;
  560. }
  561. /**
  562. * srpt_free_ioctx() - Free an SRPT I/O context structure.
  563. */
  564. static void srpt_free_ioctx(struct srpt_device *sdev, struct srpt_ioctx *ioctx,
  565. int dma_size, enum dma_data_direction dir)
  566. {
  567. if (!ioctx)
  568. return;
  569. ib_dma_unmap_single(sdev->device, ioctx->dma, dma_size, dir);
  570. kfree(ioctx->buf);
  571. kfree(ioctx);
  572. }
  573. /**
  574. * srpt_alloc_ioctx_ring() - Allocate a ring of SRPT I/O context structures.
  575. * @sdev: Device to allocate the I/O context ring for.
  576. * @ring_size: Number of elements in the I/O context ring.
  577. * @ioctx_size: I/O context size.
  578. * @dma_size: DMA buffer size.
  579. * @dir: DMA data direction.
  580. */
  581. static struct srpt_ioctx **srpt_alloc_ioctx_ring(struct srpt_device *sdev,
  582. int ring_size, int ioctx_size,
  583. int dma_size, enum dma_data_direction dir)
  584. {
  585. struct srpt_ioctx **ring;
  586. int i;
  587. WARN_ON(ioctx_size != sizeof(struct srpt_recv_ioctx)
  588. && ioctx_size != sizeof(struct srpt_send_ioctx));
  589. ring = kmalloc(ring_size * sizeof(ring[0]), GFP_KERNEL);
  590. if (!ring)
  591. goto out;
  592. for (i = 0; i < ring_size; ++i) {
  593. ring[i] = srpt_alloc_ioctx(sdev, ioctx_size, dma_size, dir);
  594. if (!ring[i])
  595. goto err;
  596. ring[i]->index = i;
  597. }
  598. goto out;
  599. err:
  600. while (--i >= 0)
  601. srpt_free_ioctx(sdev, ring[i], dma_size, dir);
  602. kfree(ring);
  603. ring = NULL;
  604. out:
  605. return ring;
  606. }
  607. /**
  608. * srpt_free_ioctx_ring() - Free the ring of SRPT I/O context structures.
  609. */
  610. static void srpt_free_ioctx_ring(struct srpt_ioctx **ioctx_ring,
  611. struct srpt_device *sdev, int ring_size,
  612. int dma_size, enum dma_data_direction dir)
  613. {
  614. int i;
  615. for (i = 0; i < ring_size; ++i)
  616. srpt_free_ioctx(sdev, ioctx_ring[i], dma_size, dir);
  617. kfree(ioctx_ring);
  618. }
  619. /**
  620. * srpt_get_cmd_state() - Get the state of a SCSI command.
  621. */
  622. static enum srpt_command_state srpt_get_cmd_state(struct srpt_send_ioctx *ioctx)
  623. {
  624. enum srpt_command_state state;
  625. unsigned long flags;
  626. BUG_ON(!ioctx);
  627. spin_lock_irqsave(&ioctx->spinlock, flags);
  628. state = ioctx->state;
  629. spin_unlock_irqrestore(&ioctx->spinlock, flags);
  630. return state;
  631. }
  632. /**
  633. * srpt_set_cmd_state() - Set the state of a SCSI command.
  634. *
  635. * Does not modify the state of aborted commands. Returns the previous command
  636. * state.
  637. */
  638. static enum srpt_command_state srpt_set_cmd_state(struct srpt_send_ioctx *ioctx,
  639. enum srpt_command_state new)
  640. {
  641. enum srpt_command_state previous;
  642. unsigned long flags;
  643. BUG_ON(!ioctx);
  644. spin_lock_irqsave(&ioctx->spinlock, flags);
  645. previous = ioctx->state;
  646. if (previous != SRPT_STATE_DONE)
  647. ioctx->state = new;
  648. spin_unlock_irqrestore(&ioctx->spinlock, flags);
  649. return previous;
  650. }
  651. /**
  652. * srpt_test_and_set_cmd_state() - Test and set the state of a command.
  653. *
  654. * Returns true if and only if the previous command state was equal to 'old'.
  655. */
  656. static bool srpt_test_and_set_cmd_state(struct srpt_send_ioctx *ioctx,
  657. enum srpt_command_state old,
  658. enum srpt_command_state new)
  659. {
  660. enum srpt_command_state previous;
  661. unsigned long flags;
  662. WARN_ON(!ioctx);
  663. WARN_ON(old == SRPT_STATE_DONE);
  664. WARN_ON(new == SRPT_STATE_NEW);
  665. spin_lock_irqsave(&ioctx->spinlock, flags);
  666. previous = ioctx->state;
  667. if (previous == old)
  668. ioctx->state = new;
  669. spin_unlock_irqrestore(&ioctx->spinlock, flags);
  670. return previous == old;
  671. }
  672. /**
  673. * srpt_post_recv() - Post an IB receive request.
  674. */
  675. static int srpt_post_recv(struct srpt_device *sdev,
  676. struct srpt_recv_ioctx *ioctx)
  677. {
  678. struct ib_sge list;
  679. struct ib_recv_wr wr, *bad_wr;
  680. BUG_ON(!sdev);
  681. wr.wr_id = encode_wr_id(SRPT_RECV, ioctx->ioctx.index);
  682. list.addr = ioctx->ioctx.dma;
  683. list.length = srp_max_req_size;
  684. list.lkey = sdev->mr->lkey;
  685. wr.next = NULL;
  686. wr.sg_list = &list;
  687. wr.num_sge = 1;
  688. return ib_post_srq_recv(sdev->srq, &wr, &bad_wr);
  689. }
  690. /**
  691. * srpt_post_send() - Post an IB send request.
  692. *
  693. * Returns zero upon success and a non-zero value upon failure.
  694. */
  695. static int srpt_post_send(struct srpt_rdma_ch *ch,
  696. struct srpt_send_ioctx *ioctx, int len)
  697. {
  698. struct ib_sge list;
  699. struct ib_send_wr wr, *bad_wr;
  700. struct srpt_device *sdev = ch->sport->sdev;
  701. int ret;
  702. atomic_inc(&ch->req_lim);
  703. ret = -ENOMEM;
  704. if (unlikely(atomic_dec_return(&ch->sq_wr_avail) < 0)) {
  705. printk(KERN_WARNING "IB send queue full (needed 1)\n");
  706. goto out;
  707. }
  708. ib_dma_sync_single_for_device(sdev->device, ioctx->ioctx.dma, len,
  709. DMA_TO_DEVICE);
  710. list.addr = ioctx->ioctx.dma;
  711. list.length = len;
  712. list.lkey = sdev->mr->lkey;
  713. wr.next = NULL;
  714. wr.wr_id = encode_wr_id(SRPT_SEND, ioctx->ioctx.index);
  715. wr.sg_list = &list;
  716. wr.num_sge = 1;
  717. wr.opcode = IB_WR_SEND;
  718. wr.send_flags = IB_SEND_SIGNALED;
  719. ret = ib_post_send(ch->qp, &wr, &bad_wr);
  720. out:
  721. if (ret < 0) {
  722. atomic_inc(&ch->sq_wr_avail);
  723. atomic_dec(&ch->req_lim);
  724. }
  725. return ret;
  726. }
  727. /**
  728. * srpt_get_desc_tbl() - Parse the data descriptors of an SRP_CMD request.
  729. * @ioctx: Pointer to the I/O context associated with the request.
  730. * @srp_cmd: Pointer to the SRP_CMD request data.
  731. * @dir: Pointer to the variable to which the transfer direction will be
  732. * written.
  733. * @data_len: Pointer to the variable to which the total data length of all
  734. * descriptors in the SRP_CMD request will be written.
  735. *
  736. * This function initializes ioctx->nrbuf and ioctx->r_bufs.
  737. *
  738. * Returns -EINVAL when the SRP_CMD request contains inconsistent descriptors;
  739. * -ENOMEM when memory allocation fails and zero upon success.
  740. */
  741. static int srpt_get_desc_tbl(struct srpt_send_ioctx *ioctx,
  742. struct srp_cmd *srp_cmd,
  743. enum dma_data_direction *dir, u64 *data_len)
  744. {
  745. struct srp_indirect_buf *idb;
  746. struct srp_direct_buf *db;
  747. unsigned add_cdb_offset;
  748. int ret;
  749. /*
  750. * The pointer computations below will only be compiled correctly
  751. * if srp_cmd::add_data is declared as s8*, u8*, s8[] or u8[], so check
  752. * whether srp_cmd::add_data has been declared as a byte pointer.
  753. */
  754. BUILD_BUG_ON(!__same_type(srp_cmd->add_data[0], (s8)0)
  755. && !__same_type(srp_cmd->add_data[0], (u8)0));
  756. BUG_ON(!dir);
  757. BUG_ON(!data_len);
  758. ret = 0;
  759. *data_len = 0;
  760. /*
  761. * The lower four bits of the buffer format field contain the DATA-IN
  762. * buffer descriptor format, and the highest four bits contain the
  763. * DATA-OUT buffer descriptor format.
  764. */
  765. *dir = DMA_NONE;
  766. if (srp_cmd->buf_fmt & 0xf)
  767. /* DATA-IN: transfer data from target to initiator (read). */
  768. *dir = DMA_FROM_DEVICE;
  769. else if (srp_cmd->buf_fmt >> 4)
  770. /* DATA-OUT: transfer data from initiator to target (write). */
  771. *dir = DMA_TO_DEVICE;
  772. /*
  773. * According to the SRP spec, the lower two bits of the 'ADDITIONAL
  774. * CDB LENGTH' field are reserved and the size in bytes of this field
  775. * is four times the value specified in bits 3..7. Hence the "& ~3".
  776. */
  777. add_cdb_offset = srp_cmd->add_cdb_len & ~3;
  778. if (((srp_cmd->buf_fmt & 0xf) == SRP_DATA_DESC_DIRECT) ||
  779. ((srp_cmd->buf_fmt >> 4) == SRP_DATA_DESC_DIRECT)) {
  780. ioctx->n_rbuf = 1;
  781. ioctx->rbufs = &ioctx->single_rbuf;
  782. db = (struct srp_direct_buf *)(srp_cmd->add_data
  783. + add_cdb_offset);
  784. memcpy(ioctx->rbufs, db, sizeof *db);
  785. *data_len = be32_to_cpu(db->len);
  786. } else if (((srp_cmd->buf_fmt & 0xf) == SRP_DATA_DESC_INDIRECT) ||
  787. ((srp_cmd->buf_fmt >> 4) == SRP_DATA_DESC_INDIRECT)) {
  788. idb = (struct srp_indirect_buf *)(srp_cmd->add_data
  789. + add_cdb_offset);
  790. ioctx->n_rbuf = be32_to_cpu(idb->table_desc.len) / sizeof *db;
  791. if (ioctx->n_rbuf >
  792. (srp_cmd->data_out_desc_cnt + srp_cmd->data_in_desc_cnt)) {
  793. printk(KERN_ERR "received unsupported SRP_CMD request"
  794. " type (%u out + %u in != %u / %zu)\n",
  795. srp_cmd->data_out_desc_cnt,
  796. srp_cmd->data_in_desc_cnt,
  797. be32_to_cpu(idb->table_desc.len),
  798. sizeof(*db));
  799. ioctx->n_rbuf = 0;
  800. ret = -EINVAL;
  801. goto out;
  802. }
  803. if (ioctx->n_rbuf == 1)
  804. ioctx->rbufs = &ioctx->single_rbuf;
  805. else {
  806. ioctx->rbufs =
  807. kmalloc(ioctx->n_rbuf * sizeof *db, GFP_ATOMIC);
  808. if (!ioctx->rbufs) {
  809. ioctx->n_rbuf = 0;
  810. ret = -ENOMEM;
  811. goto out;
  812. }
  813. }
  814. db = idb->desc_list;
  815. memcpy(ioctx->rbufs, db, ioctx->n_rbuf * sizeof *db);
  816. *data_len = be32_to_cpu(idb->len);
  817. }
  818. out:
  819. return ret;
  820. }
  821. /**
  822. * srpt_init_ch_qp() - Initialize queue pair attributes.
  823. *
  824. * Initialized the attributes of queue pair 'qp' by allowing local write,
  825. * remote read and remote write. Also transitions 'qp' to state IB_QPS_INIT.
  826. */
  827. static int srpt_init_ch_qp(struct srpt_rdma_ch *ch, struct ib_qp *qp)
  828. {
  829. struct ib_qp_attr *attr;
  830. int ret;
  831. attr = kzalloc(sizeof *attr, GFP_KERNEL);
  832. if (!attr)
  833. return -ENOMEM;
  834. attr->qp_state = IB_QPS_INIT;
  835. attr->qp_access_flags = IB_ACCESS_LOCAL_WRITE | IB_ACCESS_REMOTE_READ |
  836. IB_ACCESS_REMOTE_WRITE;
  837. attr->port_num = ch->sport->port;
  838. attr->pkey_index = 0;
  839. ret = ib_modify_qp(qp, attr,
  840. IB_QP_STATE | IB_QP_ACCESS_FLAGS | IB_QP_PORT |
  841. IB_QP_PKEY_INDEX);
  842. kfree(attr);
  843. return ret;
  844. }
  845. /**
  846. * srpt_ch_qp_rtr() - Change the state of a channel to 'ready to receive' (RTR).
  847. * @ch: channel of the queue pair.
  848. * @qp: queue pair to change the state of.
  849. *
  850. * Returns zero upon success and a negative value upon failure.
  851. *
  852. * Note: currently a struct ib_qp_attr takes 136 bytes on a 64-bit system.
  853. * If this structure ever becomes larger, it might be necessary to allocate
  854. * it dynamically instead of on the stack.
  855. */
  856. static int srpt_ch_qp_rtr(struct srpt_rdma_ch *ch, struct ib_qp *qp)
  857. {
  858. struct ib_qp_attr qp_attr;
  859. int attr_mask;
  860. int ret;
  861. qp_attr.qp_state = IB_QPS_RTR;
  862. ret = ib_cm_init_qp_attr(ch->cm_id, &qp_attr, &attr_mask);
  863. if (ret)
  864. goto out;
  865. qp_attr.max_dest_rd_atomic = 4;
  866. ret = ib_modify_qp(qp, &qp_attr, attr_mask);
  867. out:
  868. return ret;
  869. }
  870. /**
  871. * srpt_ch_qp_rts() - Change the state of a channel to 'ready to send' (RTS).
  872. * @ch: channel of the queue pair.
  873. * @qp: queue pair to change the state of.
  874. *
  875. * Returns zero upon success and a negative value upon failure.
  876. *
  877. * Note: currently a struct ib_qp_attr takes 136 bytes on a 64-bit system.
  878. * If this structure ever becomes larger, it might be necessary to allocate
  879. * it dynamically instead of on the stack.
  880. */
  881. static int srpt_ch_qp_rts(struct srpt_rdma_ch *ch, struct ib_qp *qp)
  882. {
  883. struct ib_qp_attr qp_attr;
  884. int attr_mask;
  885. int ret;
  886. qp_attr.qp_state = IB_QPS_RTS;
  887. ret = ib_cm_init_qp_attr(ch->cm_id, &qp_attr, &attr_mask);
  888. if (ret)
  889. goto out;
  890. qp_attr.max_rd_atomic = 4;
  891. ret = ib_modify_qp(qp, &qp_attr, attr_mask);
  892. out:
  893. return ret;
  894. }
  895. /**
  896. * srpt_ch_qp_err() - Set the channel queue pair state to 'error'.
  897. */
  898. static int srpt_ch_qp_err(struct srpt_rdma_ch *ch)
  899. {
  900. struct ib_qp_attr qp_attr;
  901. qp_attr.qp_state = IB_QPS_ERR;
  902. return ib_modify_qp(ch->qp, &qp_attr, IB_QP_STATE);
  903. }
  904. /**
  905. * srpt_unmap_sg_to_ib_sge() - Unmap an IB SGE list.
  906. */
  907. static void srpt_unmap_sg_to_ib_sge(struct srpt_rdma_ch *ch,
  908. struct srpt_send_ioctx *ioctx)
  909. {
  910. struct scatterlist *sg;
  911. enum dma_data_direction dir;
  912. BUG_ON(!ch);
  913. BUG_ON(!ioctx);
  914. BUG_ON(ioctx->n_rdma && !ioctx->rdma_ius);
  915. while (ioctx->n_rdma)
  916. kfree(ioctx->rdma_ius[--ioctx->n_rdma].sge);
  917. kfree(ioctx->rdma_ius);
  918. ioctx->rdma_ius = NULL;
  919. if (ioctx->mapped_sg_count) {
  920. sg = ioctx->sg;
  921. WARN_ON(!sg);
  922. dir = ioctx->cmd.data_direction;
  923. BUG_ON(dir == DMA_NONE);
  924. ib_dma_unmap_sg(ch->sport->sdev->device, sg, ioctx->sg_cnt,
  925. opposite_dma_dir(dir));
  926. ioctx->mapped_sg_count = 0;
  927. }
  928. }
  929. /**
  930. * srpt_map_sg_to_ib_sge() - Map an SG list to an IB SGE list.
  931. */
  932. static int srpt_map_sg_to_ib_sge(struct srpt_rdma_ch *ch,
  933. struct srpt_send_ioctx *ioctx)
  934. {
  935. struct ib_device *dev = ch->sport->sdev->device;
  936. struct se_cmd *cmd;
  937. struct scatterlist *sg, *sg_orig;
  938. int sg_cnt;
  939. enum dma_data_direction dir;
  940. struct rdma_iu *riu;
  941. struct srp_direct_buf *db;
  942. dma_addr_t dma_addr;
  943. struct ib_sge *sge;
  944. u64 raddr;
  945. u32 rsize;
  946. u32 tsize;
  947. u32 dma_len;
  948. int count, nrdma;
  949. int i, j, k;
  950. BUG_ON(!ch);
  951. BUG_ON(!ioctx);
  952. cmd = &ioctx->cmd;
  953. dir = cmd->data_direction;
  954. BUG_ON(dir == DMA_NONE);
  955. ioctx->sg = sg = sg_orig = cmd->t_data_sg;
  956. ioctx->sg_cnt = sg_cnt = cmd->t_data_nents;
  957. count = ib_dma_map_sg(ch->sport->sdev->device, sg, sg_cnt,
  958. opposite_dma_dir(dir));
  959. if (unlikely(!count))
  960. return -EAGAIN;
  961. ioctx->mapped_sg_count = count;
  962. if (ioctx->rdma_ius && ioctx->n_rdma_ius)
  963. nrdma = ioctx->n_rdma_ius;
  964. else {
  965. nrdma = (count + SRPT_DEF_SG_PER_WQE - 1) / SRPT_DEF_SG_PER_WQE
  966. + ioctx->n_rbuf;
  967. ioctx->rdma_ius = kzalloc(nrdma * sizeof *riu, GFP_KERNEL);
  968. if (!ioctx->rdma_ius)
  969. goto free_mem;
  970. ioctx->n_rdma_ius = nrdma;
  971. }
  972. db = ioctx->rbufs;
  973. tsize = cmd->data_length;
  974. dma_len = ib_sg_dma_len(dev, &sg[0]);
  975. riu = ioctx->rdma_ius;
  976. /*
  977. * For each remote desc - calculate the #ib_sge.
  978. * If #ib_sge < SRPT_DEF_SG_PER_WQE per rdma operation then
  979. * each remote desc rdma_iu is required a rdma wr;
  980. * else
  981. * we need to allocate extra rdma_iu to carry extra #ib_sge in
  982. * another rdma wr
  983. */
  984. for (i = 0, j = 0;
  985. j < count && i < ioctx->n_rbuf && tsize > 0; ++i, ++riu, ++db) {
  986. rsize = be32_to_cpu(db->len);
  987. raddr = be64_to_cpu(db->va);
  988. riu->raddr = raddr;
  989. riu->rkey = be32_to_cpu(db->key);
  990. riu->sge_cnt = 0;
  991. /* calculate how many sge required for this remote_buf */
  992. while (rsize > 0 && tsize > 0) {
  993. if (rsize >= dma_len) {
  994. tsize -= dma_len;
  995. rsize -= dma_len;
  996. raddr += dma_len;
  997. if (tsize > 0) {
  998. ++j;
  999. if (j < count) {
  1000. sg = sg_next(sg);
  1001. dma_len = ib_sg_dma_len(
  1002. dev, sg);
  1003. }
  1004. }
  1005. } else {
  1006. tsize -= rsize;
  1007. dma_len -= rsize;
  1008. rsize = 0;
  1009. }
  1010. ++riu->sge_cnt;
  1011. if (rsize > 0 && riu->sge_cnt == SRPT_DEF_SG_PER_WQE) {
  1012. ++ioctx->n_rdma;
  1013. riu->sge =
  1014. kmalloc(riu->sge_cnt * sizeof *riu->sge,
  1015. GFP_KERNEL);
  1016. if (!riu->sge)
  1017. goto free_mem;
  1018. ++riu;
  1019. riu->sge_cnt = 0;
  1020. riu->raddr = raddr;
  1021. riu->rkey = be32_to_cpu(db->key);
  1022. }
  1023. }
  1024. ++ioctx->n_rdma;
  1025. riu->sge = kmalloc(riu->sge_cnt * sizeof *riu->sge,
  1026. GFP_KERNEL);
  1027. if (!riu->sge)
  1028. goto free_mem;
  1029. }
  1030. db = ioctx->rbufs;
  1031. tsize = cmd->data_length;
  1032. riu = ioctx->rdma_ius;
  1033. sg = sg_orig;
  1034. dma_len = ib_sg_dma_len(dev, &sg[0]);
  1035. dma_addr = ib_sg_dma_address(dev, &sg[0]);
  1036. /* this second loop is really mapped sg_addres to rdma_iu->ib_sge */
  1037. for (i = 0, j = 0;
  1038. j < count && i < ioctx->n_rbuf && tsize > 0; ++i, ++riu, ++db) {
  1039. rsize = be32_to_cpu(db->len);
  1040. sge = riu->sge;
  1041. k = 0;
  1042. while (rsize > 0 && tsize > 0) {
  1043. sge->addr = dma_addr;
  1044. sge->lkey = ch->sport->sdev->mr->lkey;
  1045. if (rsize >= dma_len) {
  1046. sge->length =
  1047. (tsize < dma_len) ? tsize : dma_len;
  1048. tsize -= dma_len;
  1049. rsize -= dma_len;
  1050. if (tsize > 0) {
  1051. ++j;
  1052. if (j < count) {
  1053. sg = sg_next(sg);
  1054. dma_len = ib_sg_dma_len(
  1055. dev, sg);
  1056. dma_addr = ib_sg_dma_address(
  1057. dev, sg);
  1058. }
  1059. }
  1060. } else {
  1061. sge->length = (tsize < rsize) ? tsize : rsize;
  1062. tsize -= rsize;
  1063. dma_len -= rsize;
  1064. dma_addr += rsize;
  1065. rsize = 0;
  1066. }
  1067. ++k;
  1068. if (k == riu->sge_cnt && rsize > 0 && tsize > 0) {
  1069. ++riu;
  1070. sge = riu->sge;
  1071. k = 0;
  1072. } else if (rsize > 0 && tsize > 0)
  1073. ++sge;
  1074. }
  1075. }
  1076. return 0;
  1077. free_mem:
  1078. srpt_unmap_sg_to_ib_sge(ch, ioctx);
  1079. return -ENOMEM;
  1080. }
  1081. /**
  1082. * srpt_get_send_ioctx() - Obtain an I/O context for sending to the initiator.
  1083. */
  1084. static struct srpt_send_ioctx *srpt_get_send_ioctx(struct srpt_rdma_ch *ch)
  1085. {
  1086. struct srpt_send_ioctx *ioctx;
  1087. unsigned long flags;
  1088. BUG_ON(!ch);
  1089. ioctx = NULL;
  1090. spin_lock_irqsave(&ch->spinlock, flags);
  1091. if (!list_empty(&ch->free_list)) {
  1092. ioctx = list_first_entry(&ch->free_list,
  1093. struct srpt_send_ioctx, free_list);
  1094. list_del(&ioctx->free_list);
  1095. }
  1096. spin_unlock_irqrestore(&ch->spinlock, flags);
  1097. if (!ioctx)
  1098. return ioctx;
  1099. BUG_ON(ioctx->ch != ch);
  1100. spin_lock_init(&ioctx->spinlock);
  1101. ioctx->state = SRPT_STATE_NEW;
  1102. ioctx->n_rbuf = 0;
  1103. ioctx->rbufs = NULL;
  1104. ioctx->n_rdma = 0;
  1105. ioctx->n_rdma_ius = 0;
  1106. ioctx->rdma_ius = NULL;
  1107. ioctx->mapped_sg_count = 0;
  1108. init_completion(&ioctx->tx_done);
  1109. ioctx->queue_status_only = false;
  1110. /*
  1111. * transport_init_se_cmd() does not initialize all fields, so do it
  1112. * here.
  1113. */
  1114. memset(&ioctx->cmd, 0, sizeof(ioctx->cmd));
  1115. memset(&ioctx->sense_data, 0, sizeof(ioctx->sense_data));
  1116. return ioctx;
  1117. }
  1118. /**
  1119. * srpt_abort_cmd() - Abort a SCSI command.
  1120. * @ioctx: I/O context associated with the SCSI command.
  1121. * @context: Preferred execution context.
  1122. */
  1123. static int srpt_abort_cmd(struct srpt_send_ioctx *ioctx)
  1124. {
  1125. enum srpt_command_state state;
  1126. unsigned long flags;
  1127. BUG_ON(!ioctx);
  1128. /*
  1129. * If the command is in a state where the target core is waiting for
  1130. * the ib_srpt driver, change the state to the next state. Changing
  1131. * the state of the command from SRPT_STATE_NEED_DATA to
  1132. * SRPT_STATE_DATA_IN ensures that srpt_xmit_response() will call this
  1133. * function a second time.
  1134. */
  1135. spin_lock_irqsave(&ioctx->spinlock, flags);
  1136. state = ioctx->state;
  1137. switch (state) {
  1138. case SRPT_STATE_NEED_DATA:
  1139. ioctx->state = SRPT_STATE_DATA_IN;
  1140. break;
  1141. case SRPT_STATE_DATA_IN:
  1142. case SRPT_STATE_CMD_RSP_SENT:
  1143. case SRPT_STATE_MGMT_RSP_SENT:
  1144. ioctx->state = SRPT_STATE_DONE;
  1145. break;
  1146. default:
  1147. break;
  1148. }
  1149. spin_unlock_irqrestore(&ioctx->spinlock, flags);
  1150. if (state == SRPT_STATE_DONE) {
  1151. struct srpt_rdma_ch *ch = ioctx->ch;
  1152. BUG_ON(ch->sess == NULL);
  1153. target_put_sess_cmd(ch->sess, &ioctx->cmd);
  1154. goto out;
  1155. }
  1156. pr_debug("Aborting cmd with state %d and tag %lld\n", state,
  1157. ioctx->tag);
  1158. switch (state) {
  1159. case SRPT_STATE_NEW:
  1160. case SRPT_STATE_DATA_IN:
  1161. case SRPT_STATE_MGMT:
  1162. /*
  1163. * Do nothing - defer abort processing until
  1164. * srpt_queue_response() is invoked.
  1165. */
  1166. WARN_ON(!transport_check_aborted_status(&ioctx->cmd, false));
  1167. break;
  1168. case SRPT_STATE_NEED_DATA:
  1169. /* DMA_TO_DEVICE (write) - RDMA read error. */
  1170. /* XXX(hch): this is a horrible layering violation.. */
  1171. spin_lock_irqsave(&ioctx->cmd.t_state_lock, flags);
  1172. ioctx->cmd.transport_state &= ~CMD_T_ACTIVE;
  1173. spin_unlock_irqrestore(&ioctx->cmd.t_state_lock, flags);
  1174. break;
  1175. case SRPT_STATE_CMD_RSP_SENT:
  1176. /*
  1177. * SRP_RSP sending failed or the SRP_RSP send completion has
  1178. * not been received in time.
  1179. */
  1180. srpt_unmap_sg_to_ib_sge(ioctx->ch, ioctx);
  1181. target_put_sess_cmd(ioctx->ch->sess, &ioctx->cmd);
  1182. break;
  1183. case SRPT_STATE_MGMT_RSP_SENT:
  1184. srpt_set_cmd_state(ioctx, SRPT_STATE_DONE);
  1185. target_put_sess_cmd(ioctx->ch->sess, &ioctx->cmd);
  1186. break;
  1187. default:
  1188. WARN(1, "Unexpected command state (%d)", state);
  1189. break;
  1190. }
  1191. out:
  1192. return state;
  1193. }
  1194. /**
  1195. * srpt_handle_send_err_comp() - Process an IB_WC_SEND error completion.
  1196. */
  1197. static void srpt_handle_send_err_comp(struct srpt_rdma_ch *ch, u64 wr_id)
  1198. {
  1199. struct srpt_send_ioctx *ioctx;
  1200. enum srpt_command_state state;
  1201. struct se_cmd *cmd;
  1202. u32 index;
  1203. atomic_inc(&ch->sq_wr_avail);
  1204. index = idx_from_wr_id(wr_id);
  1205. ioctx = ch->ioctx_ring[index];
  1206. state = srpt_get_cmd_state(ioctx);
  1207. cmd = &ioctx->cmd;
  1208. WARN_ON(state != SRPT_STATE_CMD_RSP_SENT
  1209. && state != SRPT_STATE_MGMT_RSP_SENT
  1210. && state != SRPT_STATE_NEED_DATA
  1211. && state != SRPT_STATE_DONE);
  1212. /* If SRP_RSP sending failed, undo the ch->req_lim change. */
  1213. if (state == SRPT_STATE_CMD_RSP_SENT
  1214. || state == SRPT_STATE_MGMT_RSP_SENT)
  1215. atomic_dec(&ch->req_lim);
  1216. srpt_abort_cmd(ioctx);
  1217. }
  1218. /**
  1219. * srpt_handle_send_comp() - Process an IB send completion notification.
  1220. */
  1221. static void srpt_handle_send_comp(struct srpt_rdma_ch *ch,
  1222. struct srpt_send_ioctx *ioctx)
  1223. {
  1224. enum srpt_command_state state;
  1225. atomic_inc(&ch->sq_wr_avail);
  1226. state = srpt_set_cmd_state(ioctx, SRPT_STATE_DONE);
  1227. if (WARN_ON(state != SRPT_STATE_CMD_RSP_SENT
  1228. && state != SRPT_STATE_MGMT_RSP_SENT
  1229. && state != SRPT_STATE_DONE))
  1230. pr_debug("state = %d\n", state);
  1231. if (state != SRPT_STATE_DONE) {
  1232. srpt_unmap_sg_to_ib_sge(ch, ioctx);
  1233. transport_generic_free_cmd(&ioctx->cmd, 0);
  1234. } else {
  1235. printk(KERN_ERR "IB completion has been received too late for"
  1236. " wr_id = %u.\n", ioctx->ioctx.index);
  1237. }
  1238. }
  1239. /**
  1240. * srpt_handle_rdma_comp() - Process an IB RDMA completion notification.
  1241. *
  1242. * XXX: what is now target_execute_cmd used to be asynchronous, and unmapping
  1243. * the data that has been transferred via IB RDMA had to be postponed until the
  1244. * check_stop_free() callback. None of this is necessary anymore and needs to
  1245. * be cleaned up.
  1246. */
  1247. static void srpt_handle_rdma_comp(struct srpt_rdma_ch *ch,
  1248. struct srpt_send_ioctx *ioctx,
  1249. enum srpt_opcode opcode)
  1250. {
  1251. WARN_ON(ioctx->n_rdma <= 0);
  1252. atomic_add(ioctx->n_rdma, &ch->sq_wr_avail);
  1253. if (opcode == SRPT_RDMA_READ_LAST) {
  1254. if (srpt_test_and_set_cmd_state(ioctx, SRPT_STATE_NEED_DATA,
  1255. SRPT_STATE_DATA_IN))
  1256. target_execute_cmd(&ioctx->cmd);
  1257. else
  1258. printk(KERN_ERR "%s[%d]: wrong state = %d\n", __func__,
  1259. __LINE__, srpt_get_cmd_state(ioctx));
  1260. } else if (opcode == SRPT_RDMA_ABORT) {
  1261. ioctx->rdma_aborted = true;
  1262. } else {
  1263. WARN(true, "unexpected opcode %d\n", opcode);
  1264. }
  1265. }
  1266. /**
  1267. * srpt_handle_rdma_err_comp() - Process an IB RDMA error completion.
  1268. */
  1269. static void srpt_handle_rdma_err_comp(struct srpt_rdma_ch *ch,
  1270. struct srpt_send_ioctx *ioctx,
  1271. enum srpt_opcode opcode)
  1272. {
  1273. struct se_cmd *cmd;
  1274. enum srpt_command_state state;
  1275. cmd = &ioctx->cmd;
  1276. state = srpt_get_cmd_state(ioctx);
  1277. switch (opcode) {
  1278. case SRPT_RDMA_READ_LAST:
  1279. if (ioctx->n_rdma <= 0) {
  1280. printk(KERN_ERR "Received invalid RDMA read"
  1281. " error completion with idx %d\n",
  1282. ioctx->ioctx.index);
  1283. break;
  1284. }
  1285. atomic_add(ioctx->n_rdma, &ch->sq_wr_avail);
  1286. if (state == SRPT_STATE_NEED_DATA)
  1287. srpt_abort_cmd(ioctx);
  1288. else
  1289. printk(KERN_ERR "%s[%d]: wrong state = %d\n",
  1290. __func__, __LINE__, state);
  1291. break;
  1292. case SRPT_RDMA_WRITE_LAST:
  1293. break;
  1294. default:
  1295. printk(KERN_ERR "%s[%d]: opcode = %u\n", __func__,
  1296. __LINE__, opcode);
  1297. break;
  1298. }
  1299. }
  1300. /**
  1301. * srpt_build_cmd_rsp() - Build an SRP_RSP response.
  1302. * @ch: RDMA channel through which the request has been received.
  1303. * @ioctx: I/O context associated with the SRP_CMD request. The response will
  1304. * be built in the buffer ioctx->buf points at and hence this function will
  1305. * overwrite the request data.
  1306. * @tag: tag of the request for which this response is being generated.
  1307. * @status: value for the STATUS field of the SRP_RSP information unit.
  1308. *
  1309. * Returns the size in bytes of the SRP_RSP response.
  1310. *
  1311. * An SRP_RSP response contains a SCSI status or service response. See also
  1312. * section 6.9 in the SRP r16a document for the format of an SRP_RSP
  1313. * response. See also SPC-2 for more information about sense data.
  1314. */
  1315. static int srpt_build_cmd_rsp(struct srpt_rdma_ch *ch,
  1316. struct srpt_send_ioctx *ioctx, u64 tag,
  1317. int status)
  1318. {
  1319. struct srp_rsp *srp_rsp;
  1320. const u8 *sense_data;
  1321. int sense_data_len, max_sense_len;
  1322. /*
  1323. * The lowest bit of all SAM-3 status codes is zero (see also
  1324. * paragraph 5.3 in SAM-3).
  1325. */
  1326. WARN_ON(status & 1);
  1327. srp_rsp = ioctx->ioctx.buf;
  1328. BUG_ON(!srp_rsp);
  1329. sense_data = ioctx->sense_data;
  1330. sense_data_len = ioctx->cmd.scsi_sense_length;
  1331. WARN_ON(sense_data_len > sizeof(ioctx->sense_data));
  1332. memset(srp_rsp, 0, sizeof *srp_rsp);
  1333. srp_rsp->opcode = SRP_RSP;
  1334. srp_rsp->req_lim_delta =
  1335. __constant_cpu_to_be32(1 + atomic_xchg(&ch->req_lim_delta, 0));
  1336. srp_rsp->tag = tag;
  1337. srp_rsp->status = status;
  1338. if (sense_data_len) {
  1339. BUILD_BUG_ON(MIN_MAX_RSP_SIZE <= sizeof(*srp_rsp));
  1340. max_sense_len = ch->max_ti_iu_len - sizeof(*srp_rsp);
  1341. if (sense_data_len > max_sense_len) {
  1342. printk(KERN_WARNING "truncated sense data from %d to %d"
  1343. " bytes\n", sense_data_len, max_sense_len);
  1344. sense_data_len = max_sense_len;
  1345. }
  1346. srp_rsp->flags |= SRP_RSP_FLAG_SNSVALID;
  1347. srp_rsp->sense_data_len = cpu_to_be32(sense_data_len);
  1348. memcpy(srp_rsp + 1, sense_data, sense_data_len);
  1349. }
  1350. return sizeof(*srp_rsp) + sense_data_len;
  1351. }
  1352. /**
  1353. * srpt_build_tskmgmt_rsp() - Build a task management response.
  1354. * @ch: RDMA channel through which the request has been received.
  1355. * @ioctx: I/O context in which the SRP_RSP response will be built.
  1356. * @rsp_code: RSP_CODE that will be stored in the response.
  1357. * @tag: Tag of the request for which this response is being generated.
  1358. *
  1359. * Returns the size in bytes of the SRP_RSP response.
  1360. *
  1361. * An SRP_RSP response contains a SCSI status or service response. See also
  1362. * section 6.9 in the SRP r16a document for the format of an SRP_RSP
  1363. * response.
  1364. */
  1365. static int srpt_build_tskmgmt_rsp(struct srpt_rdma_ch *ch,
  1366. struct srpt_send_ioctx *ioctx,
  1367. u8 rsp_code, u64 tag)
  1368. {
  1369. struct srp_rsp *srp_rsp;
  1370. int resp_data_len;
  1371. int resp_len;
  1372. resp_data_len = 4;
  1373. resp_len = sizeof(*srp_rsp) + resp_data_len;
  1374. srp_rsp = ioctx->ioctx.buf;
  1375. BUG_ON(!srp_rsp);
  1376. memset(srp_rsp, 0, sizeof *srp_rsp);
  1377. srp_rsp->opcode = SRP_RSP;
  1378. srp_rsp->req_lim_delta = __constant_cpu_to_be32(1
  1379. + atomic_xchg(&ch->req_lim_delta, 0));
  1380. srp_rsp->tag = tag;
  1381. srp_rsp->flags |= SRP_RSP_FLAG_RSPVALID;
  1382. srp_rsp->resp_data_len = cpu_to_be32(resp_data_len);
  1383. srp_rsp->data[3] = rsp_code;
  1384. return resp_len;
  1385. }
  1386. #define NO_SUCH_LUN ((uint64_t)-1LL)
  1387. /*
  1388. * SCSI LUN addressing method. See also SAM-2 and the section about
  1389. * eight byte LUNs.
  1390. */
  1391. enum scsi_lun_addr_method {
  1392. SCSI_LUN_ADDR_METHOD_PERIPHERAL = 0,
  1393. SCSI_LUN_ADDR_METHOD_FLAT = 1,
  1394. SCSI_LUN_ADDR_METHOD_LUN = 2,
  1395. SCSI_LUN_ADDR_METHOD_EXTENDED_LUN = 3,
  1396. };
  1397. /*
  1398. * srpt_unpack_lun() - Convert from network LUN to linear LUN.
  1399. *
  1400. * Convert an 2-byte, 4-byte, 6-byte or 8-byte LUN structure in network byte
  1401. * order (big endian) to a linear LUN. Supports three LUN addressing methods:
  1402. * peripheral, flat and logical unit. See also SAM-2, section 4.9.4 (page 40).
  1403. */
  1404. static uint64_t srpt_unpack_lun(const uint8_t *lun, int len)
  1405. {
  1406. uint64_t res = NO_SUCH_LUN;
  1407. int addressing_method;
  1408. if (unlikely(len < 2)) {
  1409. printk(KERN_ERR "Illegal LUN length %d, expected 2 bytes or "
  1410. "more", len);
  1411. goto out;
  1412. }
  1413. switch (len) {
  1414. case 8:
  1415. if ((*((__be64 *)lun) &
  1416. __constant_cpu_to_be64(0x0000FFFFFFFFFFFFLL)) != 0)
  1417. goto out_err;
  1418. break;
  1419. case 4:
  1420. if (*((__be16 *)&lun[2]) != 0)
  1421. goto out_err;
  1422. break;
  1423. case 6:
  1424. if (*((__be32 *)&lun[2]) != 0)
  1425. goto out_err;
  1426. break;
  1427. case 2:
  1428. break;
  1429. default:
  1430. goto out_err;
  1431. }
  1432. addressing_method = (*lun) >> 6; /* highest two bits of byte 0 */
  1433. switch (addressing_method) {
  1434. case SCSI_LUN_ADDR_METHOD_PERIPHERAL:
  1435. case SCSI_LUN_ADDR_METHOD_FLAT:
  1436. case SCSI_LUN_ADDR_METHOD_LUN:
  1437. res = *(lun + 1) | (((*lun) & 0x3f) << 8);
  1438. break;
  1439. case SCSI_LUN_ADDR_METHOD_EXTENDED_LUN:
  1440. default:
  1441. printk(KERN_ERR "Unimplemented LUN addressing method %u",
  1442. addressing_method);
  1443. break;
  1444. }
  1445. out:
  1446. return res;
  1447. out_err:
  1448. printk(KERN_ERR "Support for multi-level LUNs has not yet been"
  1449. " implemented");
  1450. goto out;
  1451. }
  1452. static int srpt_check_stop_free(struct se_cmd *cmd)
  1453. {
  1454. struct srpt_send_ioctx *ioctx = container_of(cmd,
  1455. struct srpt_send_ioctx, cmd);
  1456. return target_put_sess_cmd(ioctx->ch->sess, &ioctx->cmd);
  1457. }
  1458. /**
  1459. * srpt_handle_cmd() - Process SRP_CMD.
  1460. */
  1461. static int srpt_handle_cmd(struct srpt_rdma_ch *ch,
  1462. struct srpt_recv_ioctx *recv_ioctx,
  1463. struct srpt_send_ioctx *send_ioctx)
  1464. {
  1465. struct se_cmd *cmd;
  1466. struct srp_cmd *srp_cmd;
  1467. uint64_t unpacked_lun;
  1468. u64 data_len;
  1469. enum dma_data_direction dir;
  1470. sense_reason_t ret;
  1471. int rc;
  1472. BUG_ON(!send_ioctx);
  1473. srp_cmd = recv_ioctx->ioctx.buf;
  1474. cmd = &send_ioctx->cmd;
  1475. send_ioctx->tag = srp_cmd->tag;
  1476. switch (srp_cmd->task_attr) {
  1477. case SRP_CMD_SIMPLE_Q:
  1478. cmd->sam_task_attr = MSG_SIMPLE_TAG;
  1479. break;
  1480. case SRP_CMD_ORDERED_Q:
  1481. default:
  1482. cmd->sam_task_attr = MSG_ORDERED_TAG;
  1483. break;
  1484. case SRP_CMD_HEAD_OF_Q:
  1485. cmd->sam_task_attr = MSG_HEAD_TAG;
  1486. break;
  1487. case SRP_CMD_ACA:
  1488. cmd->sam_task_attr = MSG_ACA_TAG;
  1489. break;
  1490. }
  1491. if (srpt_get_desc_tbl(send_ioctx, srp_cmd, &dir, &data_len)) {
  1492. printk(KERN_ERR "0x%llx: parsing SRP descriptor table failed.\n",
  1493. srp_cmd->tag);
  1494. ret = TCM_INVALID_CDB_FIELD;
  1495. goto send_sense;
  1496. }
  1497. unpacked_lun = srpt_unpack_lun((uint8_t *)&srp_cmd->lun,
  1498. sizeof(srp_cmd->lun));
  1499. rc = target_submit_cmd(cmd, ch->sess, srp_cmd->cdb,
  1500. &send_ioctx->sense_data[0], unpacked_lun, data_len,
  1501. MSG_SIMPLE_TAG, dir, TARGET_SCF_ACK_KREF);
  1502. if (rc != 0) {
  1503. ret = TCM_LOGICAL_UNIT_COMMUNICATION_FAILURE;
  1504. goto send_sense;
  1505. }
  1506. return 0;
  1507. send_sense:
  1508. transport_send_check_condition_and_sense(cmd, ret, 0);
  1509. return -1;
  1510. }
  1511. /**
  1512. * srpt_rx_mgmt_fn_tag() - Process a task management function by tag.
  1513. * @ch: RDMA channel of the task management request.
  1514. * @fn: Task management function to perform.
  1515. * @req_tag: Tag of the SRP task management request.
  1516. * @mgmt_ioctx: I/O context of the task management request.
  1517. *
  1518. * Returns zero if the target core will process the task management
  1519. * request asynchronously.
  1520. *
  1521. * Note: It is assumed that the initiator serializes tag-based task management
  1522. * requests.
  1523. */
  1524. static int srpt_rx_mgmt_fn_tag(struct srpt_send_ioctx *ioctx, u64 tag)
  1525. {
  1526. struct srpt_device *sdev;
  1527. struct srpt_rdma_ch *ch;
  1528. struct srpt_send_ioctx *target;
  1529. int ret, i;
  1530. ret = -EINVAL;
  1531. ch = ioctx->ch;
  1532. BUG_ON(!ch);
  1533. BUG_ON(!ch->sport);
  1534. sdev = ch->sport->sdev;
  1535. BUG_ON(!sdev);
  1536. spin_lock_irq(&sdev->spinlock);
  1537. for (i = 0; i < ch->rq_size; ++i) {
  1538. target = ch->ioctx_ring[i];
  1539. if (target->cmd.se_lun == ioctx->cmd.se_lun &&
  1540. target->tag == tag &&
  1541. srpt_get_cmd_state(target) != SRPT_STATE_DONE) {
  1542. ret = 0;
  1543. /* now let the target core abort &target->cmd; */
  1544. break;
  1545. }
  1546. }
  1547. spin_unlock_irq(&sdev->spinlock);
  1548. return ret;
  1549. }
  1550. static int srp_tmr_to_tcm(int fn)
  1551. {
  1552. switch (fn) {
  1553. case SRP_TSK_ABORT_TASK:
  1554. return TMR_ABORT_TASK;
  1555. case SRP_TSK_ABORT_TASK_SET:
  1556. return TMR_ABORT_TASK_SET;
  1557. case SRP_TSK_CLEAR_TASK_SET:
  1558. return TMR_CLEAR_TASK_SET;
  1559. case SRP_TSK_LUN_RESET:
  1560. return TMR_LUN_RESET;
  1561. case SRP_TSK_CLEAR_ACA:
  1562. return TMR_CLEAR_ACA;
  1563. default:
  1564. return -1;
  1565. }
  1566. }
  1567. /**
  1568. * srpt_handle_tsk_mgmt() - Process an SRP_TSK_MGMT information unit.
  1569. *
  1570. * Returns 0 if and only if the request will be processed by the target core.
  1571. *
  1572. * For more information about SRP_TSK_MGMT information units, see also section
  1573. * 6.7 in the SRP r16a document.
  1574. */
  1575. static void srpt_handle_tsk_mgmt(struct srpt_rdma_ch *ch,
  1576. struct srpt_recv_ioctx *recv_ioctx,
  1577. struct srpt_send_ioctx *send_ioctx)
  1578. {
  1579. struct srp_tsk_mgmt *srp_tsk;
  1580. struct se_cmd *cmd;
  1581. struct se_session *sess = ch->sess;
  1582. uint64_t unpacked_lun;
  1583. uint32_t tag = 0;
  1584. int tcm_tmr;
  1585. int rc;
  1586. BUG_ON(!send_ioctx);
  1587. srp_tsk = recv_ioctx->ioctx.buf;
  1588. cmd = &send_ioctx->cmd;
  1589. pr_debug("recv tsk_mgmt fn %d for task_tag %lld and cmd tag %lld"
  1590. " cm_id %p sess %p\n", srp_tsk->tsk_mgmt_func,
  1591. srp_tsk->task_tag, srp_tsk->tag, ch->cm_id, ch->sess);
  1592. srpt_set_cmd_state(send_ioctx, SRPT_STATE_MGMT);
  1593. send_ioctx->tag = srp_tsk->tag;
  1594. tcm_tmr = srp_tmr_to_tcm(srp_tsk->tsk_mgmt_func);
  1595. if (tcm_tmr < 0) {
  1596. send_ioctx->cmd.se_tmr_req->response =
  1597. TMR_TASK_MGMT_FUNCTION_NOT_SUPPORTED;
  1598. goto fail;
  1599. }
  1600. unpacked_lun = srpt_unpack_lun((uint8_t *)&srp_tsk->lun,
  1601. sizeof(srp_tsk->lun));
  1602. if (srp_tsk->tsk_mgmt_func == SRP_TSK_ABORT_TASK) {
  1603. rc = srpt_rx_mgmt_fn_tag(send_ioctx, srp_tsk->task_tag);
  1604. if (rc < 0) {
  1605. send_ioctx->cmd.se_tmr_req->response =
  1606. TMR_TASK_DOES_NOT_EXIST;
  1607. goto fail;
  1608. }
  1609. tag = srp_tsk->task_tag;
  1610. }
  1611. rc = target_submit_tmr(&send_ioctx->cmd, sess, NULL, unpacked_lun,
  1612. srp_tsk, tcm_tmr, GFP_KERNEL, tag,
  1613. TARGET_SCF_ACK_KREF);
  1614. if (rc != 0) {
  1615. send_ioctx->cmd.se_tmr_req->response = TMR_FUNCTION_REJECTED;
  1616. goto fail;
  1617. }
  1618. return;
  1619. fail:
  1620. transport_send_check_condition_and_sense(cmd, 0, 0); // XXX:
  1621. }
  1622. /**
  1623. * srpt_handle_new_iu() - Process a newly received information unit.
  1624. * @ch: RDMA channel through which the information unit has been received.
  1625. * @ioctx: SRPT I/O context associated with the information unit.
  1626. */
  1627. static void srpt_handle_new_iu(struct srpt_rdma_ch *ch,
  1628. struct srpt_recv_ioctx *recv_ioctx,
  1629. struct srpt_send_ioctx *send_ioctx)
  1630. {
  1631. struct srp_cmd *srp_cmd;
  1632. enum rdma_ch_state ch_state;
  1633. BUG_ON(!ch);
  1634. BUG_ON(!recv_ioctx);
  1635. ib_dma_sync_single_for_cpu(ch->sport->sdev->device,
  1636. recv_ioctx->ioctx.dma, srp_max_req_size,
  1637. DMA_FROM_DEVICE);
  1638. ch_state = srpt_get_ch_state(ch);
  1639. if (unlikely(ch_state == CH_CONNECTING)) {
  1640. list_add_tail(&recv_ioctx->wait_list, &ch->cmd_wait_list);
  1641. goto out;
  1642. }
  1643. if (unlikely(ch_state != CH_LIVE))
  1644. goto out;
  1645. srp_cmd = recv_ioctx->ioctx.buf;
  1646. if (srp_cmd->opcode == SRP_CMD || srp_cmd->opcode == SRP_TSK_MGMT) {
  1647. if (!send_ioctx)
  1648. send_ioctx = srpt_get_send_ioctx(ch);
  1649. if (unlikely(!send_ioctx)) {
  1650. list_add_tail(&recv_ioctx->wait_list,
  1651. &ch->cmd_wait_list);
  1652. goto out;
  1653. }
  1654. }
  1655. switch (srp_cmd->opcode) {
  1656. case SRP_CMD:
  1657. srpt_handle_cmd(ch, recv_ioctx, send_ioctx);
  1658. break;
  1659. case SRP_TSK_MGMT:
  1660. srpt_handle_tsk_mgmt(ch, recv_ioctx, send_ioctx);
  1661. break;
  1662. case SRP_I_LOGOUT:
  1663. printk(KERN_ERR "Not yet implemented: SRP_I_LOGOUT\n");
  1664. break;
  1665. case SRP_CRED_RSP:
  1666. pr_debug("received SRP_CRED_RSP\n");
  1667. break;
  1668. case SRP_AER_RSP:
  1669. pr_debug("received SRP_AER_RSP\n");
  1670. break;
  1671. case SRP_RSP:
  1672. printk(KERN_ERR "Received SRP_RSP\n");
  1673. break;
  1674. default:
  1675. printk(KERN_ERR "received IU with unknown opcode 0x%x\n",
  1676. srp_cmd->opcode);
  1677. break;
  1678. }
  1679. srpt_post_recv(ch->sport->sdev, recv_ioctx);
  1680. out:
  1681. return;
  1682. }
  1683. static void srpt_process_rcv_completion(struct ib_cq *cq,
  1684. struct srpt_rdma_ch *ch,
  1685. struct ib_wc *wc)
  1686. {
  1687. struct srpt_device *sdev = ch->sport->sdev;
  1688. struct srpt_recv_ioctx *ioctx;
  1689. u32 index;
  1690. index = idx_from_wr_id(wc->wr_id);
  1691. if (wc->status == IB_WC_SUCCESS) {
  1692. int req_lim;
  1693. req_lim = atomic_dec_return(&ch->req_lim);
  1694. if (unlikely(req_lim < 0))
  1695. printk(KERN_ERR "req_lim = %d < 0\n", req_lim);
  1696. ioctx = sdev->ioctx_ring[index];
  1697. srpt_handle_new_iu(ch, ioctx, NULL);
  1698. } else {
  1699. printk(KERN_INFO "receiving failed for idx %u with status %d\n",
  1700. index, wc->status);
  1701. }
  1702. }
  1703. /**
  1704. * srpt_process_send_completion() - Process an IB send completion.
  1705. *
  1706. * Note: Although this has not yet been observed during tests, at least in
  1707. * theory it is possible that the srpt_get_send_ioctx() call invoked by
  1708. * srpt_handle_new_iu() fails. This is possible because the req_lim_delta
  1709. * value in each response is set to one, and it is possible that this response
  1710. * makes the initiator send a new request before the send completion for that
  1711. * response has been processed. This could e.g. happen if the call to
  1712. * srpt_put_send_iotcx() is delayed because of a higher priority interrupt or
  1713. * if IB retransmission causes generation of the send completion to be
  1714. * delayed. Incoming information units for which srpt_get_send_ioctx() fails
  1715. * are queued on cmd_wait_list. The code below processes these delayed
  1716. * requests one at a time.
  1717. */
  1718. static void srpt_process_send_completion(struct ib_cq *cq,
  1719. struct srpt_rdma_ch *ch,
  1720. struct ib_wc *wc)
  1721. {
  1722. struct srpt_send_ioctx *send_ioctx;
  1723. uint32_t index;
  1724. enum srpt_opcode opcode;
  1725. index = idx_from_wr_id(wc->wr_id);
  1726. opcode = opcode_from_wr_id(wc->wr_id);
  1727. send_ioctx = ch->ioctx_ring[index];
  1728. if (wc->status == IB_WC_SUCCESS) {
  1729. if (opcode == SRPT_SEND)
  1730. srpt_handle_send_comp(ch, send_ioctx);
  1731. else {
  1732. WARN_ON(opcode != SRPT_RDMA_ABORT &&
  1733. wc->opcode != IB_WC_RDMA_READ);
  1734. srpt_handle_rdma_comp(ch, send_ioctx, opcode);
  1735. }
  1736. } else {
  1737. if (opcode == SRPT_SEND) {
  1738. printk(KERN_INFO "sending response for idx %u failed"
  1739. " with status %d\n", index, wc->status);
  1740. srpt_handle_send_err_comp(ch, wc->wr_id);
  1741. } else if (opcode != SRPT_RDMA_MID) {
  1742. printk(KERN_INFO "RDMA t %d for idx %u failed with"
  1743. " status %d", opcode, index, wc->status);
  1744. srpt_handle_rdma_err_comp(ch, send_ioctx, opcode);
  1745. }
  1746. }
  1747. while (unlikely(opcode == SRPT_SEND
  1748. && !list_empty(&ch->cmd_wait_list)
  1749. && srpt_get_ch_state(ch) == CH_LIVE
  1750. && (send_ioctx = srpt_get_send_ioctx(ch)) != NULL)) {
  1751. struct srpt_recv_ioctx *recv_ioctx;
  1752. recv_ioctx = list_first_entry(&ch->cmd_wait_list,
  1753. struct srpt_recv_ioctx,
  1754. wait_list);
  1755. list_del(&recv_ioctx->wait_list);
  1756. srpt_handle_new_iu(ch, recv_ioctx, send_ioctx);
  1757. }
  1758. }
  1759. static void srpt_process_completion(struct ib_cq *cq, struct srpt_rdma_ch *ch)
  1760. {
  1761. struct ib_wc *const wc = ch->wc;
  1762. int i, n;
  1763. WARN_ON(cq != ch->cq);
  1764. ib_req_notify_cq(cq, IB_CQ_NEXT_COMP);
  1765. while ((n = ib_poll_cq(cq, ARRAY_SIZE(ch->wc), wc)) > 0) {
  1766. for (i = 0; i < n; i++) {
  1767. if (opcode_from_wr_id(wc[i].wr_id) == SRPT_RECV)
  1768. srpt_process_rcv_completion(cq, ch, &wc[i]);
  1769. else
  1770. srpt_process_send_completion(cq, ch, &wc[i]);
  1771. }
  1772. }
  1773. }
  1774. /**
  1775. * srpt_completion() - IB completion queue callback function.
  1776. *
  1777. * Notes:
  1778. * - It is guaranteed that a completion handler will never be invoked
  1779. * concurrently on two different CPUs for the same completion queue. See also
  1780. * Documentation/infiniband/core_locking.txt and the implementation of
  1781. * handle_edge_irq() in kernel/irq/chip.c.
  1782. * - When threaded IRQs are enabled, completion handlers are invoked in thread
  1783. * context instead of interrupt context.
  1784. */
  1785. static void srpt_completion(struct ib_cq *cq, void *ctx)
  1786. {
  1787. struct srpt_rdma_ch *ch = ctx;
  1788. wake_up_interruptible(&ch->wait_queue);
  1789. }
  1790. static int srpt_compl_thread(void *arg)
  1791. {
  1792. struct srpt_rdma_ch *ch;
  1793. /* Hibernation / freezing of the SRPT kernel thread is not supported. */
  1794. current->flags |= PF_NOFREEZE;
  1795. ch = arg;
  1796. BUG_ON(!ch);
  1797. printk(KERN_INFO "Session %s: kernel thread %s (PID %d) started\n",
  1798. ch->sess_name, ch->thread->comm, current->pid);
  1799. while (!kthread_should_stop()) {
  1800. wait_event_interruptible(ch->wait_queue,
  1801. (srpt_process_completion(ch->cq, ch),
  1802. kthread_should_stop()));
  1803. }
  1804. printk(KERN_INFO "Session %s: kernel thread %s (PID %d) stopped\n",
  1805. ch->sess_name, ch->thread->comm, current->pid);
  1806. return 0;
  1807. }
  1808. /**
  1809. * srpt_create_ch_ib() - Create receive and send completion queues.
  1810. */
  1811. static int srpt_create_ch_ib(struct srpt_rdma_ch *ch)
  1812. {
  1813. struct ib_qp_init_attr *qp_init;
  1814. struct srpt_port *sport = ch->sport;
  1815. struct srpt_device *sdev = sport->sdev;
  1816. u32 srp_sq_size = sport->port_attrib.srp_sq_size;
  1817. int ret;
  1818. WARN_ON(ch->rq_size < 1);
  1819. ret = -ENOMEM;
  1820. qp_init = kzalloc(sizeof *qp_init, GFP_KERNEL);
  1821. if (!qp_init)
  1822. goto out;
  1823. ch->cq = ib_create_cq(sdev->device, srpt_completion, NULL, ch,
  1824. ch->rq_size + srp_sq_size, 0);
  1825. if (IS_ERR(ch->cq)) {
  1826. ret = PTR_ERR(ch->cq);
  1827. printk(KERN_ERR "failed to create CQ cqe= %d ret= %d\n",
  1828. ch->rq_size + srp_sq_size, ret);
  1829. goto out;
  1830. }
  1831. qp_init->qp_context = (void *)ch;
  1832. qp_init->event_handler
  1833. = (void(*)(struct ib_event *, void*))srpt_qp_event;
  1834. qp_init->send_cq = ch->cq;
  1835. qp_init->recv_cq = ch->cq;
  1836. qp_init->srq = sdev->srq;
  1837. qp_init->sq_sig_type = IB_SIGNAL_REQ_WR;
  1838. qp_init->qp_type = IB_QPT_RC;
  1839. qp_init->cap.max_send_wr = srp_sq_size;
  1840. qp_init->cap.max_send_sge = SRPT_DEF_SG_PER_WQE;
  1841. ch->qp = ib_create_qp(sdev->pd, qp_init);
  1842. if (IS_ERR(ch->qp)) {
  1843. ret = PTR_ERR(ch->qp);
  1844. printk(KERN_ERR "failed to create_qp ret= %d\n", ret);
  1845. goto err_destroy_cq;
  1846. }
  1847. atomic_set(&ch->sq_wr_avail, qp_init->cap.max_send_wr);
  1848. pr_debug("%s: max_cqe= %d max_sge= %d sq_size = %d cm_id= %p\n",
  1849. __func__, ch->cq->cqe, qp_init->cap.max_send_sge,
  1850. qp_init->cap.max_send_wr, ch->cm_id);
  1851. ret = srpt_init_ch_qp(ch, ch->qp);
  1852. if (ret)
  1853. goto err_destroy_qp;
  1854. init_waitqueue_head(&ch->wait_queue);
  1855. pr_debug("creating thread for session %s\n", ch->sess_name);
  1856. ch->thread = kthread_run(srpt_compl_thread, ch, "ib_srpt_compl");
  1857. if (IS_ERR(ch->thread)) {
  1858. printk(KERN_ERR "failed to create kernel thread %ld\n",
  1859. PTR_ERR(ch->thread));
  1860. ch->thread = NULL;
  1861. goto err_destroy_qp;
  1862. }
  1863. out:
  1864. kfree(qp_init);
  1865. return ret;
  1866. err_destroy_qp:
  1867. ib_destroy_qp(ch->qp);
  1868. err_destroy_cq:
  1869. ib_destroy_cq(ch->cq);
  1870. goto out;
  1871. }
  1872. static void srpt_destroy_ch_ib(struct srpt_rdma_ch *ch)
  1873. {
  1874. if (ch->thread)
  1875. kthread_stop(ch->thread);
  1876. ib_destroy_qp(ch->qp);
  1877. ib_destroy_cq(ch->cq);
  1878. }
  1879. /**
  1880. * __srpt_close_ch() - Close an RDMA channel by setting the QP error state.
  1881. *
  1882. * Reset the QP and make sure all resources associated with the channel will
  1883. * be deallocated at an appropriate time.
  1884. *
  1885. * Note: The caller must hold ch->sport->sdev->spinlock.
  1886. */
  1887. static void __srpt_close_ch(struct srpt_rdma_ch *ch)
  1888. {
  1889. struct srpt_device *sdev;
  1890. enum rdma_ch_state prev_state;
  1891. unsigned long flags;
  1892. sdev = ch->sport->sdev;
  1893. spin_lock_irqsave(&ch->spinlock, flags);
  1894. prev_state = ch->state;
  1895. switch (prev_state) {
  1896. case CH_CONNECTING:
  1897. case CH_LIVE:
  1898. ch->state = CH_DISCONNECTING;
  1899. break;
  1900. default:
  1901. break;
  1902. }
  1903. spin_unlock_irqrestore(&ch->spinlock, flags);
  1904. switch (prev_state) {
  1905. case CH_CONNECTING:
  1906. ib_send_cm_rej(ch->cm_id, IB_CM_REJ_NO_RESOURCES, NULL, 0,
  1907. NULL, 0);
  1908. /* fall through */
  1909. case CH_LIVE:
  1910. if (ib_send_cm_dreq(ch->cm_id, NULL, 0) < 0)
  1911. printk(KERN_ERR "sending CM DREQ failed.\n");
  1912. break;
  1913. case CH_DISCONNECTING:
  1914. break;
  1915. case CH_DRAINING:
  1916. case CH_RELEASING:
  1917. break;
  1918. }
  1919. }
  1920. /**
  1921. * srpt_close_ch() - Close an RDMA channel.
  1922. */
  1923. static void srpt_close_ch(struct srpt_rdma_ch *ch)
  1924. {
  1925. struct srpt_device *sdev;
  1926. sdev = ch->sport->sdev;
  1927. spin_lock_irq(&sdev->spinlock);
  1928. __srpt_close_ch(ch);
  1929. spin_unlock_irq(&sdev->spinlock);
  1930. }
  1931. /**
  1932. * srpt_shutdown_session() - Whether or not a session may be shut down.
  1933. */
  1934. static int srpt_shutdown_session(struct se_session *se_sess)
  1935. {
  1936. struct srpt_rdma_ch *ch = se_sess->fabric_sess_ptr;
  1937. unsigned long flags;
  1938. spin_lock_irqsave(&ch->spinlock, flags);
  1939. if (ch->in_shutdown) {
  1940. spin_unlock_irqrestore(&ch->spinlock, flags);
  1941. return true;
  1942. }
  1943. ch->in_shutdown = true;
  1944. target_sess_cmd_list_set_waiting(se_sess);
  1945. spin_unlock_irqrestore(&ch->spinlock, flags);
  1946. return true;
  1947. }
  1948. /**
  1949. * srpt_drain_channel() - Drain a channel by resetting the IB queue pair.
  1950. * @cm_id: Pointer to the CM ID of the channel to be drained.
  1951. *
  1952. * Note: Must be called from inside srpt_cm_handler to avoid a race between
  1953. * accessing sdev->spinlock and the call to kfree(sdev) in srpt_remove_one()
  1954. * (the caller of srpt_cm_handler holds the cm_id spinlock; srpt_remove_one()
  1955. * waits until all target sessions for the associated IB device have been
  1956. * unregistered and target session registration involves a call to
  1957. * ib_destroy_cm_id(), which locks the cm_id spinlock and hence waits until
  1958. * this function has finished).
  1959. */
  1960. static void srpt_drain_channel(struct ib_cm_id *cm_id)
  1961. {
  1962. struct srpt_device *sdev;
  1963. struct srpt_rdma_ch *ch;
  1964. int ret;
  1965. bool do_reset = false;
  1966. WARN_ON_ONCE(irqs_disabled());
  1967. sdev = cm_id->context;
  1968. BUG_ON(!sdev);
  1969. spin_lock_irq(&sdev->spinlock);
  1970. list_for_each_entry(ch, &sdev->rch_list, list) {
  1971. if (ch->cm_id == cm_id) {
  1972. do_reset = srpt_test_and_set_ch_state(ch,
  1973. CH_CONNECTING, CH_DRAINING) ||
  1974. srpt_test_and_set_ch_state(ch,
  1975. CH_LIVE, CH_DRAINING) ||
  1976. srpt_test_and_set_ch_state(ch,
  1977. CH_DISCONNECTING, CH_DRAINING);
  1978. break;
  1979. }
  1980. }
  1981. spin_unlock_irq(&sdev->spinlock);
  1982. if (do_reset) {
  1983. if (ch->sess)
  1984. srpt_shutdown_session(ch->sess);
  1985. ret = srpt_ch_qp_err(ch);
  1986. if (ret < 0)
  1987. printk(KERN_ERR "Setting queue pair in error state"
  1988. " failed: %d\n", ret);
  1989. }
  1990. }
  1991. /**
  1992. * srpt_find_channel() - Look up an RDMA channel.
  1993. * @cm_id: Pointer to the CM ID of the channel to be looked up.
  1994. *
  1995. * Return NULL if no matching RDMA channel has been found.
  1996. */
  1997. static struct srpt_rdma_ch *srpt_find_channel(struct srpt_device *sdev,
  1998. struct ib_cm_id *cm_id)
  1999. {
  2000. struct srpt_rdma_ch *ch;
  2001. bool found;
  2002. WARN_ON_ONCE(irqs_disabled());
  2003. BUG_ON(!sdev);
  2004. found = false;
  2005. spin_lock_irq(&sdev->spinlock);
  2006. list_for_each_entry(ch, &sdev->rch_list, list) {
  2007. if (ch->cm_id == cm_id) {
  2008. found = true;
  2009. break;
  2010. }
  2011. }
  2012. spin_unlock_irq(&sdev->spinlock);
  2013. return found ? ch : NULL;
  2014. }
  2015. /**
  2016. * srpt_release_channel() - Release channel resources.
  2017. *
  2018. * Schedules the actual release because:
  2019. * - Calling the ib_destroy_cm_id() call from inside an IB CM callback would
  2020. * trigger a deadlock.
  2021. * - It is not safe to call TCM transport_* functions from interrupt context.
  2022. */
  2023. static void srpt_release_channel(struct srpt_rdma_ch *ch)
  2024. {
  2025. schedule_work(&ch->release_work);
  2026. }
  2027. static void srpt_release_channel_work(struct work_struct *w)
  2028. {
  2029. struct srpt_rdma_ch *ch;
  2030. struct srpt_device *sdev;
  2031. struct se_session *se_sess;
  2032. ch = container_of(w, struct srpt_rdma_ch, release_work);
  2033. pr_debug("ch = %p; ch->sess = %p; release_done = %p\n", ch, ch->sess,
  2034. ch->release_done);
  2035. sdev = ch->sport->sdev;
  2036. BUG_ON(!sdev);
  2037. se_sess = ch->sess;
  2038. BUG_ON(!se_sess);
  2039. target_wait_for_sess_cmds(se_sess);
  2040. transport_deregister_session_configfs(se_sess);
  2041. transport_deregister_session(se_sess);
  2042. ch->sess = NULL;
  2043. ib_destroy_cm_id(ch->cm_id);
  2044. srpt_destroy_ch_ib(ch);
  2045. srpt_free_ioctx_ring((struct srpt_ioctx **)ch->ioctx_ring,
  2046. ch->sport->sdev, ch->rq_size,
  2047. ch->rsp_size, DMA_TO_DEVICE);
  2048. spin_lock_irq(&sdev->spinlock);
  2049. list_del(&ch->list);
  2050. spin_unlock_irq(&sdev->spinlock);
  2051. if (ch->release_done)
  2052. complete(ch->release_done);
  2053. wake_up(&sdev->ch_releaseQ);
  2054. kfree(ch);
  2055. }
  2056. static struct srpt_node_acl *__srpt_lookup_acl(struct srpt_port *sport,
  2057. u8 i_port_id[16])
  2058. {
  2059. struct srpt_node_acl *nacl;
  2060. list_for_each_entry(nacl, &sport->port_acl_list, list)
  2061. if (memcmp(nacl->i_port_id, i_port_id,
  2062. sizeof(nacl->i_port_id)) == 0)
  2063. return nacl;
  2064. return NULL;
  2065. }
  2066. static struct srpt_node_acl *srpt_lookup_acl(struct srpt_port *sport,
  2067. u8 i_port_id[16])
  2068. {
  2069. struct srpt_node_acl *nacl;
  2070. spin_lock_irq(&sport->port_acl_lock);
  2071. nacl = __srpt_lookup_acl(sport, i_port_id);
  2072. spin_unlock_irq(&sport->port_acl_lock);
  2073. return nacl;
  2074. }
  2075. /**
  2076. * srpt_cm_req_recv() - Process the event IB_CM_REQ_RECEIVED.
  2077. *
  2078. * Ownership of the cm_id is transferred to the target session if this
  2079. * functions returns zero. Otherwise the caller remains the owner of cm_id.
  2080. */
  2081. static int srpt_cm_req_recv(struct ib_cm_id *cm_id,
  2082. struct ib_cm_req_event_param *param,
  2083. void *private_data)
  2084. {
  2085. struct srpt_device *sdev = cm_id->context;
  2086. struct srpt_port *sport = &sdev->port[param->port - 1];
  2087. struct srp_login_req *req;
  2088. struct srp_login_rsp *rsp;
  2089. struct srp_login_rej *rej;
  2090. struct ib_cm_rep_param *rep_param;
  2091. struct srpt_rdma_ch *ch, *tmp_ch;
  2092. struct srpt_node_acl *nacl;
  2093. u32 it_iu_len;
  2094. int i;
  2095. int ret = 0;
  2096. WARN_ON_ONCE(irqs_disabled());
  2097. if (WARN_ON(!sdev || !private_data))
  2098. return -EINVAL;
  2099. req = (struct srp_login_req *)private_data;
  2100. it_iu_len = be32_to_cpu(req->req_it_iu_len);
  2101. printk(KERN_INFO "Received SRP_LOGIN_REQ with i_port_id 0x%llx:0x%llx,"
  2102. " t_port_id 0x%llx:0x%llx and it_iu_len %d on port %d"
  2103. " (guid=0x%llx:0x%llx)\n",
  2104. be64_to_cpu(*(__be64 *)&req->initiator_port_id[0]),
  2105. be64_to_cpu(*(__be64 *)&req->initiator_port_id[8]),
  2106. be64_to_cpu(*(__be64 *)&req->target_port_id[0]),
  2107. be64_to_cpu(*(__be64 *)&req->target_port_id[8]),
  2108. it_iu_len,
  2109. param->port,
  2110. be64_to_cpu(*(__be64 *)&sdev->port[param->port - 1].gid.raw[0]),
  2111. be64_to_cpu(*(__be64 *)&sdev->port[param->port - 1].gid.raw[8]));
  2112. rsp = kzalloc(sizeof *rsp, GFP_KERNEL);
  2113. rej = kzalloc(sizeof *rej, GFP_KERNEL);
  2114. rep_param = kzalloc(sizeof *rep_param, GFP_KERNEL);
  2115. if (!rsp || !rej || !rep_param) {
  2116. ret = -ENOMEM;
  2117. goto out;
  2118. }
  2119. if (it_iu_len > srp_max_req_size || it_iu_len < 64) {
  2120. rej->reason = __constant_cpu_to_be32(
  2121. SRP_LOGIN_REJ_REQ_IT_IU_LENGTH_TOO_LARGE);
  2122. ret = -EINVAL;
  2123. printk(KERN_ERR "rejected SRP_LOGIN_REQ because its"
  2124. " length (%d bytes) is out of range (%d .. %d)\n",
  2125. it_iu_len, 64, srp_max_req_size);
  2126. goto reject;
  2127. }
  2128. if (!sport->enabled) {
  2129. rej->reason = __constant_cpu_to_be32(
  2130. SRP_LOGIN_REJ_INSUFFICIENT_RESOURCES);
  2131. ret = -EINVAL;
  2132. printk(KERN_ERR "rejected SRP_LOGIN_REQ because the target port"
  2133. " has not yet been enabled\n");
  2134. goto reject;
  2135. }
  2136. if ((req->req_flags & SRP_MTCH_ACTION) == SRP_MULTICHAN_SINGLE) {
  2137. rsp->rsp_flags = SRP_LOGIN_RSP_MULTICHAN_NO_CHAN;
  2138. spin_lock_irq(&sdev->spinlock);
  2139. list_for_each_entry_safe(ch, tmp_ch, &sdev->rch_list, list) {
  2140. if (!memcmp(ch->i_port_id, req->initiator_port_id, 16)
  2141. && !memcmp(ch->t_port_id, req->target_port_id, 16)
  2142. && param->port == ch->sport->port
  2143. && param->listen_id == ch->sport->sdev->cm_id
  2144. && ch->cm_id) {
  2145. enum rdma_ch_state ch_state;
  2146. ch_state = srpt_get_ch_state(ch);
  2147. if (ch_state != CH_CONNECTING
  2148. && ch_state != CH_LIVE)
  2149. continue;
  2150. /* found an existing channel */
  2151. pr_debug("Found existing channel %s"
  2152. " cm_id= %p state= %d\n",
  2153. ch->sess_name, ch->cm_id, ch_state);
  2154. __srpt_close_ch(ch);
  2155. rsp->rsp_flags =
  2156. SRP_LOGIN_RSP_MULTICHAN_TERMINATED;
  2157. }
  2158. }
  2159. spin_unlock_irq(&sdev->spinlock);
  2160. } else
  2161. rsp->rsp_flags = SRP_LOGIN_RSP_MULTICHAN_MAINTAINED;
  2162. if (*(__be64 *)req->target_port_id != cpu_to_be64(srpt_service_guid)
  2163. || *(__be64 *)(req->target_port_id + 8) !=
  2164. cpu_to_be64(srpt_service_guid)) {
  2165. rej->reason = __constant_cpu_to_be32(
  2166. SRP_LOGIN_REJ_UNABLE_ASSOCIATE_CHANNEL);
  2167. ret = -ENOMEM;
  2168. printk(KERN_ERR "rejected SRP_LOGIN_REQ because it"
  2169. " has an invalid target port identifier.\n");
  2170. goto reject;
  2171. }
  2172. ch = kzalloc(sizeof *ch, GFP_KERNEL);
  2173. if (!ch) {
  2174. rej->reason = __constant_cpu_to_be32(
  2175. SRP_LOGIN_REJ_INSUFFICIENT_RESOURCES);
  2176. printk(KERN_ERR "rejected SRP_LOGIN_REQ because no memory.\n");
  2177. ret = -ENOMEM;
  2178. goto reject;
  2179. }
  2180. INIT_WORK(&ch->release_work, srpt_release_channel_work);
  2181. memcpy(ch->i_port_id, req->initiator_port_id, 16);
  2182. memcpy(ch->t_port_id, req->target_port_id, 16);
  2183. ch->sport = &sdev->port[param->port - 1];
  2184. ch->cm_id = cm_id;
  2185. /*
  2186. * Avoid QUEUE_FULL conditions by limiting the number of buffers used
  2187. * for the SRP protocol to the command queue size.
  2188. */
  2189. ch->rq_size = SRPT_RQ_SIZE;
  2190. spin_lock_init(&ch->spinlock);
  2191. ch->state = CH_CONNECTING;
  2192. INIT_LIST_HEAD(&ch->cmd_wait_list);
  2193. ch->rsp_size = ch->sport->port_attrib.srp_max_rsp_size;
  2194. ch->ioctx_ring = (struct srpt_send_ioctx **)
  2195. srpt_alloc_ioctx_ring(ch->sport->sdev, ch->rq_size,
  2196. sizeof(*ch->ioctx_ring[0]),
  2197. ch->rsp_size, DMA_TO_DEVICE);
  2198. if (!ch->ioctx_ring)
  2199. goto free_ch;
  2200. INIT_LIST_HEAD(&ch->free_list);
  2201. for (i = 0; i < ch->rq_size; i++) {
  2202. ch->ioctx_ring[i]->ch = ch;
  2203. list_add_tail(&ch->ioctx_ring[i]->free_list, &ch->free_list);
  2204. }
  2205. ret = srpt_create_ch_ib(ch);
  2206. if (ret) {
  2207. rej->reason = __constant_cpu_to_be32(
  2208. SRP_LOGIN_REJ_INSUFFICIENT_RESOURCES);
  2209. printk(KERN_ERR "rejected SRP_LOGIN_REQ because creating"
  2210. " a new RDMA channel failed.\n");
  2211. goto free_ring;
  2212. }
  2213. ret = srpt_ch_qp_rtr(ch, ch->qp);
  2214. if (ret) {
  2215. rej->reason = __constant_cpu_to_be32(
  2216. SRP_LOGIN_REJ_INSUFFICIENT_RESOURCES);
  2217. printk(KERN_ERR "rejected SRP_LOGIN_REQ because enabling"
  2218. " RTR failed (error code = %d)\n", ret);
  2219. goto destroy_ib;
  2220. }
  2221. /*
  2222. * Use the initator port identifier as the session name.
  2223. */
  2224. snprintf(ch->sess_name, sizeof(ch->sess_name), "0x%016llx%016llx",
  2225. be64_to_cpu(*(__be64 *)ch->i_port_id),
  2226. be64_to_cpu(*(__be64 *)(ch->i_port_id + 8)));
  2227. pr_debug("registering session %s\n", ch->sess_name);
  2228. nacl = srpt_lookup_acl(sport, ch->i_port_id);
  2229. if (!nacl) {
  2230. printk(KERN_INFO "Rejected login because no ACL has been"
  2231. " configured yet for initiator %s.\n", ch->sess_name);
  2232. rej->reason = __constant_cpu_to_be32(
  2233. SRP_LOGIN_REJ_CHANNEL_LIMIT_REACHED);
  2234. goto destroy_ib;
  2235. }
  2236. ch->sess = transport_init_session(TARGET_PROT_NORMAL);
  2237. if (IS_ERR(ch->sess)) {
  2238. rej->reason = __constant_cpu_to_be32(
  2239. SRP_LOGIN_REJ_INSUFFICIENT_RESOURCES);
  2240. pr_debug("Failed to create session\n");
  2241. goto deregister_session;
  2242. }
  2243. ch->sess->se_node_acl = &nacl->nacl;
  2244. transport_register_session(&sport->port_tpg_1, &nacl->nacl, ch->sess, ch);
  2245. pr_debug("Establish connection sess=%p name=%s cm_id=%p\n", ch->sess,
  2246. ch->sess_name, ch->cm_id);
  2247. /* create srp_login_response */
  2248. rsp->opcode = SRP_LOGIN_RSP;
  2249. rsp->tag = req->tag;
  2250. rsp->max_it_iu_len = req->req_it_iu_len;
  2251. rsp->max_ti_iu_len = req->req_it_iu_len;
  2252. ch->max_ti_iu_len = it_iu_len;
  2253. rsp->buf_fmt = __constant_cpu_to_be16(SRP_BUF_FORMAT_DIRECT
  2254. | SRP_BUF_FORMAT_INDIRECT);
  2255. rsp->req_lim_delta = cpu_to_be32(ch->rq_size);
  2256. atomic_set(&ch->req_lim, ch->rq_size);
  2257. atomic_set(&ch->req_lim_delta, 0);
  2258. /* create cm reply */
  2259. rep_param->qp_num = ch->qp->qp_num;
  2260. rep_param->private_data = (void *)rsp;
  2261. rep_param->private_data_len = sizeof *rsp;
  2262. rep_param->rnr_retry_count = 7;
  2263. rep_param->flow_control = 1;
  2264. rep_param->failover_accepted = 0;
  2265. rep_param->srq = 1;
  2266. rep_param->responder_resources = 4;
  2267. rep_param->initiator_depth = 4;
  2268. ret = ib_send_cm_rep(cm_id, rep_param);
  2269. if (ret) {
  2270. printk(KERN_ERR "sending SRP_LOGIN_REQ response failed"
  2271. " (error code = %d)\n", ret);
  2272. goto release_channel;
  2273. }
  2274. spin_lock_irq(&sdev->spinlock);
  2275. list_add_tail(&ch->list, &sdev->rch_list);
  2276. spin_unlock_irq(&sdev->spinlock);
  2277. goto out;
  2278. release_channel:
  2279. srpt_set_ch_state(ch, CH_RELEASING);
  2280. transport_deregister_session_configfs(ch->sess);
  2281. deregister_session:
  2282. transport_deregister_session(ch->sess);
  2283. ch->sess = NULL;
  2284. destroy_ib:
  2285. srpt_destroy_ch_ib(ch);
  2286. free_ring:
  2287. srpt_free_ioctx_ring((struct srpt_ioctx **)ch->ioctx_ring,
  2288. ch->sport->sdev, ch->rq_size,
  2289. ch->rsp_size, DMA_TO_DEVICE);
  2290. free_ch:
  2291. kfree(ch);
  2292. reject:
  2293. rej->opcode = SRP_LOGIN_REJ;
  2294. rej->tag = req->tag;
  2295. rej->buf_fmt = __constant_cpu_to_be16(SRP_BUF_FORMAT_DIRECT
  2296. | SRP_BUF_FORMAT_INDIRECT);
  2297. ib_send_cm_rej(cm_id, IB_CM_REJ_CONSUMER_DEFINED, NULL, 0,
  2298. (void *)rej, sizeof *rej);
  2299. out:
  2300. kfree(rep_param);
  2301. kfree(rsp);
  2302. kfree(rej);
  2303. return ret;
  2304. }
  2305. static void srpt_cm_rej_recv(struct ib_cm_id *cm_id)
  2306. {
  2307. printk(KERN_INFO "Received IB REJ for cm_id %p.\n", cm_id);
  2308. srpt_drain_channel(cm_id);
  2309. }
  2310. /**
  2311. * srpt_cm_rtu_recv() - Process an IB_CM_RTU_RECEIVED or USER_ESTABLISHED event.
  2312. *
  2313. * An IB_CM_RTU_RECEIVED message indicates that the connection is established
  2314. * and that the recipient may begin transmitting (RTU = ready to use).
  2315. */
  2316. static void srpt_cm_rtu_recv(struct ib_cm_id *cm_id)
  2317. {
  2318. struct srpt_rdma_ch *ch;
  2319. int ret;
  2320. ch = srpt_find_channel(cm_id->context, cm_id);
  2321. BUG_ON(!ch);
  2322. if (srpt_test_and_set_ch_state(ch, CH_CONNECTING, CH_LIVE)) {
  2323. struct srpt_recv_ioctx *ioctx, *ioctx_tmp;
  2324. ret = srpt_ch_qp_rts(ch, ch->qp);
  2325. list_for_each_entry_safe(ioctx, ioctx_tmp, &ch->cmd_wait_list,
  2326. wait_list) {
  2327. list_del(&ioctx->wait_list);
  2328. srpt_handle_new_iu(ch, ioctx, NULL);
  2329. }
  2330. if (ret)
  2331. srpt_close_ch(ch);
  2332. }
  2333. }
  2334. static void srpt_cm_timewait_exit(struct ib_cm_id *cm_id)
  2335. {
  2336. printk(KERN_INFO "Received IB TimeWait exit for cm_id %p.\n", cm_id);
  2337. srpt_drain_channel(cm_id);
  2338. }
  2339. static void srpt_cm_rep_error(struct ib_cm_id *cm_id)
  2340. {
  2341. printk(KERN_INFO "Received IB REP error for cm_id %p.\n", cm_id);
  2342. srpt_drain_channel(cm_id);
  2343. }
  2344. /**
  2345. * srpt_cm_dreq_recv() - Process reception of a DREQ message.
  2346. */
  2347. static void srpt_cm_dreq_recv(struct ib_cm_id *cm_id)
  2348. {
  2349. struct srpt_rdma_ch *ch;
  2350. unsigned long flags;
  2351. bool send_drep = false;
  2352. ch = srpt_find_channel(cm_id->context, cm_id);
  2353. BUG_ON(!ch);
  2354. pr_debug("cm_id= %p ch->state= %d\n", cm_id, srpt_get_ch_state(ch));
  2355. spin_lock_irqsave(&ch->spinlock, flags);
  2356. switch (ch->state) {
  2357. case CH_CONNECTING:
  2358. case CH_LIVE:
  2359. send_drep = true;
  2360. ch->state = CH_DISCONNECTING;
  2361. break;
  2362. case CH_DISCONNECTING:
  2363. case CH_DRAINING:
  2364. case CH_RELEASING:
  2365. WARN(true, "unexpected channel state %d\n", ch->state);
  2366. break;
  2367. }
  2368. spin_unlock_irqrestore(&ch->spinlock, flags);
  2369. if (send_drep) {
  2370. if (ib_send_cm_drep(ch->cm_id, NULL, 0) < 0)
  2371. printk(KERN_ERR "Sending IB DREP failed.\n");
  2372. printk(KERN_INFO "Received DREQ and sent DREP for session %s.\n",
  2373. ch->sess_name);
  2374. }
  2375. }
  2376. /**
  2377. * srpt_cm_drep_recv() - Process reception of a DREP message.
  2378. */
  2379. static void srpt_cm_drep_recv(struct ib_cm_id *cm_id)
  2380. {
  2381. printk(KERN_INFO "Received InfiniBand DREP message for cm_id %p.\n",
  2382. cm_id);
  2383. srpt_drain_channel(cm_id);
  2384. }
  2385. /**
  2386. * srpt_cm_handler() - IB connection manager callback function.
  2387. *
  2388. * A non-zero return value will cause the caller destroy the CM ID.
  2389. *
  2390. * Note: srpt_cm_handler() must only return a non-zero value when transferring
  2391. * ownership of the cm_id to a channel by srpt_cm_req_recv() failed. Returning
  2392. * a non-zero value in any other case will trigger a race with the
  2393. * ib_destroy_cm_id() call in srpt_release_channel().
  2394. */
  2395. static int srpt_cm_handler(struct ib_cm_id *cm_id, struct ib_cm_event *event)
  2396. {
  2397. int ret;
  2398. ret = 0;
  2399. switch (event->event) {
  2400. case IB_CM_REQ_RECEIVED:
  2401. ret = srpt_cm_req_recv(cm_id, &event->param.req_rcvd,
  2402. event->private_data);
  2403. break;
  2404. case IB_CM_REJ_RECEIVED:
  2405. srpt_cm_rej_recv(cm_id);
  2406. break;
  2407. case IB_CM_RTU_RECEIVED:
  2408. case IB_CM_USER_ESTABLISHED:
  2409. srpt_cm_rtu_recv(cm_id);
  2410. break;
  2411. case IB_CM_DREQ_RECEIVED:
  2412. srpt_cm_dreq_recv(cm_id);
  2413. break;
  2414. case IB_CM_DREP_RECEIVED:
  2415. srpt_cm_drep_recv(cm_id);
  2416. break;
  2417. case IB_CM_TIMEWAIT_EXIT:
  2418. srpt_cm_timewait_exit(cm_id);
  2419. break;
  2420. case IB_CM_REP_ERROR:
  2421. srpt_cm_rep_error(cm_id);
  2422. break;
  2423. case IB_CM_DREQ_ERROR:
  2424. printk(KERN_INFO "Received IB DREQ ERROR event.\n");
  2425. break;
  2426. case IB_CM_MRA_RECEIVED:
  2427. printk(KERN_INFO "Received IB MRA event\n");
  2428. break;
  2429. default:
  2430. printk(KERN_ERR "received unrecognized IB CM event %d\n",
  2431. event->event);
  2432. break;
  2433. }
  2434. return ret;
  2435. }
  2436. /**
  2437. * srpt_perform_rdmas() - Perform IB RDMA.
  2438. *
  2439. * Returns zero upon success or a negative number upon failure.
  2440. */
  2441. static int srpt_perform_rdmas(struct srpt_rdma_ch *ch,
  2442. struct srpt_send_ioctx *ioctx)
  2443. {
  2444. struct ib_send_wr wr;
  2445. struct ib_send_wr *bad_wr;
  2446. struct rdma_iu *riu;
  2447. int i;
  2448. int ret;
  2449. int sq_wr_avail;
  2450. enum dma_data_direction dir;
  2451. const int n_rdma = ioctx->n_rdma;
  2452. dir = ioctx->cmd.data_direction;
  2453. if (dir == DMA_TO_DEVICE) {
  2454. /* write */
  2455. ret = -ENOMEM;
  2456. sq_wr_avail = atomic_sub_return(n_rdma, &ch->sq_wr_avail);
  2457. if (sq_wr_avail < 0) {
  2458. printk(KERN_WARNING "IB send queue full (needed %d)\n",
  2459. n_rdma);
  2460. goto out;
  2461. }
  2462. }
  2463. ioctx->rdma_aborted = false;
  2464. ret = 0;
  2465. riu = ioctx->rdma_ius;
  2466. memset(&wr, 0, sizeof wr);
  2467. for (i = 0; i < n_rdma; ++i, ++riu) {
  2468. if (dir == DMA_FROM_DEVICE) {
  2469. wr.opcode = IB_WR_RDMA_WRITE;
  2470. wr.wr_id = encode_wr_id(i == n_rdma - 1 ?
  2471. SRPT_RDMA_WRITE_LAST :
  2472. SRPT_RDMA_MID,
  2473. ioctx->ioctx.index);
  2474. } else {
  2475. wr.opcode = IB_WR_RDMA_READ;
  2476. wr.wr_id = encode_wr_id(i == n_rdma - 1 ?
  2477. SRPT_RDMA_READ_LAST :
  2478. SRPT_RDMA_MID,
  2479. ioctx->ioctx.index);
  2480. }
  2481. wr.next = NULL;
  2482. wr.wr.rdma.remote_addr = riu->raddr;
  2483. wr.wr.rdma.rkey = riu->rkey;
  2484. wr.num_sge = riu->sge_cnt;
  2485. wr.sg_list = riu->sge;
  2486. /* only get completion event for the last rdma write */
  2487. if (i == (n_rdma - 1) && dir == DMA_TO_DEVICE)
  2488. wr.send_flags = IB_SEND_SIGNALED;
  2489. ret = ib_post_send(ch->qp, &wr, &bad_wr);
  2490. if (ret)
  2491. break;
  2492. }
  2493. if (ret)
  2494. printk(KERN_ERR "%s[%d]: ib_post_send() returned %d for %d/%d",
  2495. __func__, __LINE__, ret, i, n_rdma);
  2496. if (ret && i > 0) {
  2497. wr.num_sge = 0;
  2498. wr.wr_id = encode_wr_id(SRPT_RDMA_ABORT, ioctx->ioctx.index);
  2499. wr.send_flags = IB_SEND_SIGNALED;
  2500. while (ch->state == CH_LIVE &&
  2501. ib_post_send(ch->qp, &wr, &bad_wr) != 0) {
  2502. printk(KERN_INFO "Trying to abort failed RDMA transfer [%d]",
  2503. ioctx->ioctx.index);
  2504. msleep(1000);
  2505. }
  2506. while (ch->state != CH_RELEASING && !ioctx->rdma_aborted) {
  2507. printk(KERN_INFO "Waiting until RDMA abort finished [%d]",
  2508. ioctx->ioctx.index);
  2509. msleep(1000);
  2510. }
  2511. }
  2512. out:
  2513. if (unlikely(dir == DMA_TO_DEVICE && ret < 0))
  2514. atomic_add(n_rdma, &ch->sq_wr_avail);
  2515. return ret;
  2516. }
  2517. /**
  2518. * srpt_xfer_data() - Start data transfer from initiator to target.
  2519. */
  2520. static int srpt_xfer_data(struct srpt_rdma_ch *ch,
  2521. struct srpt_send_ioctx *ioctx)
  2522. {
  2523. int ret;
  2524. ret = srpt_map_sg_to_ib_sge(ch, ioctx);
  2525. if (ret) {
  2526. printk(KERN_ERR "%s[%d] ret=%d\n", __func__, __LINE__, ret);
  2527. goto out;
  2528. }
  2529. ret = srpt_perform_rdmas(ch, ioctx);
  2530. if (ret) {
  2531. if (ret == -EAGAIN || ret == -ENOMEM)
  2532. printk(KERN_INFO "%s[%d] queue full -- ret=%d\n",
  2533. __func__, __LINE__, ret);
  2534. else
  2535. printk(KERN_ERR "%s[%d] fatal error -- ret=%d\n",
  2536. __func__, __LINE__, ret);
  2537. goto out_unmap;
  2538. }
  2539. out:
  2540. return ret;
  2541. out_unmap:
  2542. srpt_unmap_sg_to_ib_sge(ch, ioctx);
  2543. goto out;
  2544. }
  2545. static int srpt_write_pending_status(struct se_cmd *se_cmd)
  2546. {
  2547. struct srpt_send_ioctx *ioctx;
  2548. ioctx = container_of(se_cmd, struct srpt_send_ioctx, cmd);
  2549. return srpt_get_cmd_state(ioctx) == SRPT_STATE_NEED_DATA;
  2550. }
  2551. /*
  2552. * srpt_write_pending() - Start data transfer from initiator to target (write).
  2553. */
  2554. static int srpt_write_pending(struct se_cmd *se_cmd)
  2555. {
  2556. struct srpt_rdma_ch *ch;
  2557. struct srpt_send_ioctx *ioctx;
  2558. enum srpt_command_state new_state;
  2559. enum rdma_ch_state ch_state;
  2560. int ret;
  2561. ioctx = container_of(se_cmd, struct srpt_send_ioctx, cmd);
  2562. new_state = srpt_set_cmd_state(ioctx, SRPT_STATE_NEED_DATA);
  2563. WARN_ON(new_state == SRPT_STATE_DONE);
  2564. ch = ioctx->ch;
  2565. BUG_ON(!ch);
  2566. ch_state = srpt_get_ch_state(ch);
  2567. switch (ch_state) {
  2568. case CH_CONNECTING:
  2569. WARN(true, "unexpected channel state %d\n", ch_state);
  2570. ret = -EINVAL;
  2571. goto out;
  2572. case CH_LIVE:
  2573. break;
  2574. case CH_DISCONNECTING:
  2575. case CH_DRAINING:
  2576. case CH_RELEASING:
  2577. pr_debug("cmd with tag %lld: channel disconnecting\n",
  2578. ioctx->tag);
  2579. srpt_set_cmd_state(ioctx, SRPT_STATE_DATA_IN);
  2580. ret = -EINVAL;
  2581. goto out;
  2582. }
  2583. ret = srpt_xfer_data(ch, ioctx);
  2584. out:
  2585. return ret;
  2586. }
  2587. static u8 tcm_to_srp_tsk_mgmt_status(const int tcm_mgmt_status)
  2588. {
  2589. switch (tcm_mgmt_status) {
  2590. case TMR_FUNCTION_COMPLETE:
  2591. return SRP_TSK_MGMT_SUCCESS;
  2592. case TMR_FUNCTION_REJECTED:
  2593. return SRP_TSK_MGMT_FUNC_NOT_SUPP;
  2594. }
  2595. return SRP_TSK_MGMT_FAILED;
  2596. }
  2597. /**
  2598. * srpt_queue_response() - Transmits the response to a SCSI command.
  2599. *
  2600. * Callback function called by the TCM core. Must not block since it can be
  2601. * invoked on the context of the IB completion handler.
  2602. */
  2603. static void srpt_queue_response(struct se_cmd *cmd)
  2604. {
  2605. struct srpt_rdma_ch *ch;
  2606. struct srpt_send_ioctx *ioctx;
  2607. enum srpt_command_state state;
  2608. unsigned long flags;
  2609. int ret;
  2610. enum dma_data_direction dir;
  2611. int resp_len;
  2612. u8 srp_tm_status;
  2613. ioctx = container_of(cmd, struct srpt_send_ioctx, cmd);
  2614. ch = ioctx->ch;
  2615. BUG_ON(!ch);
  2616. spin_lock_irqsave(&ioctx->spinlock, flags);
  2617. state = ioctx->state;
  2618. switch (state) {
  2619. case SRPT_STATE_NEW:
  2620. case SRPT_STATE_DATA_IN:
  2621. ioctx->state = SRPT_STATE_CMD_RSP_SENT;
  2622. break;
  2623. case SRPT_STATE_MGMT:
  2624. ioctx->state = SRPT_STATE_MGMT_RSP_SENT;
  2625. break;
  2626. default:
  2627. WARN(true, "ch %p; cmd %d: unexpected command state %d\n",
  2628. ch, ioctx->ioctx.index, ioctx->state);
  2629. break;
  2630. }
  2631. spin_unlock_irqrestore(&ioctx->spinlock, flags);
  2632. if (unlikely(transport_check_aborted_status(&ioctx->cmd, false)
  2633. || WARN_ON_ONCE(state == SRPT_STATE_CMD_RSP_SENT))) {
  2634. atomic_inc(&ch->req_lim_delta);
  2635. srpt_abort_cmd(ioctx);
  2636. return;
  2637. }
  2638. dir = ioctx->cmd.data_direction;
  2639. /* For read commands, transfer the data to the initiator. */
  2640. if (dir == DMA_FROM_DEVICE && ioctx->cmd.data_length &&
  2641. !ioctx->queue_status_only) {
  2642. ret = srpt_xfer_data(ch, ioctx);
  2643. if (ret) {
  2644. printk(KERN_ERR "xfer_data failed for tag %llu\n",
  2645. ioctx->tag);
  2646. return;
  2647. }
  2648. }
  2649. if (state != SRPT_STATE_MGMT)
  2650. resp_len = srpt_build_cmd_rsp(ch, ioctx, ioctx->tag,
  2651. cmd->scsi_status);
  2652. else {
  2653. srp_tm_status
  2654. = tcm_to_srp_tsk_mgmt_status(cmd->se_tmr_req->response);
  2655. resp_len = srpt_build_tskmgmt_rsp(ch, ioctx, srp_tm_status,
  2656. ioctx->tag);
  2657. }
  2658. ret = srpt_post_send(ch, ioctx, resp_len);
  2659. if (ret) {
  2660. printk(KERN_ERR "sending cmd response failed for tag %llu\n",
  2661. ioctx->tag);
  2662. srpt_unmap_sg_to_ib_sge(ch, ioctx);
  2663. srpt_set_cmd_state(ioctx, SRPT_STATE_DONE);
  2664. target_put_sess_cmd(ioctx->ch->sess, &ioctx->cmd);
  2665. }
  2666. }
  2667. static int srpt_queue_data_in(struct se_cmd *cmd)
  2668. {
  2669. srpt_queue_response(cmd);
  2670. return 0;
  2671. }
  2672. static void srpt_queue_tm_rsp(struct se_cmd *cmd)
  2673. {
  2674. srpt_queue_response(cmd);
  2675. }
  2676. static void srpt_aborted_task(struct se_cmd *cmd)
  2677. {
  2678. struct srpt_send_ioctx *ioctx = container_of(cmd,
  2679. struct srpt_send_ioctx, cmd);
  2680. srpt_unmap_sg_to_ib_sge(ioctx->ch, ioctx);
  2681. }
  2682. static int srpt_queue_status(struct se_cmd *cmd)
  2683. {
  2684. struct srpt_send_ioctx *ioctx;
  2685. ioctx = container_of(cmd, struct srpt_send_ioctx, cmd);
  2686. BUG_ON(ioctx->sense_data != cmd->sense_buffer);
  2687. if (cmd->se_cmd_flags &
  2688. (SCF_TRANSPORT_TASK_SENSE | SCF_EMULATED_TASK_SENSE))
  2689. WARN_ON(cmd->scsi_status != SAM_STAT_CHECK_CONDITION);
  2690. ioctx->queue_status_only = true;
  2691. srpt_queue_response(cmd);
  2692. return 0;
  2693. }
  2694. static void srpt_refresh_port_work(struct work_struct *work)
  2695. {
  2696. struct srpt_port *sport = container_of(work, struct srpt_port, work);
  2697. srpt_refresh_port(sport);
  2698. }
  2699. static int srpt_ch_list_empty(struct srpt_device *sdev)
  2700. {
  2701. int res;
  2702. spin_lock_irq(&sdev->spinlock);
  2703. res = list_empty(&sdev->rch_list);
  2704. spin_unlock_irq(&sdev->spinlock);
  2705. return res;
  2706. }
  2707. /**
  2708. * srpt_release_sdev() - Free the channel resources associated with a target.
  2709. */
  2710. static int srpt_release_sdev(struct srpt_device *sdev)
  2711. {
  2712. struct srpt_rdma_ch *ch, *tmp_ch;
  2713. int res;
  2714. WARN_ON_ONCE(irqs_disabled());
  2715. BUG_ON(!sdev);
  2716. spin_lock_irq(&sdev->spinlock);
  2717. list_for_each_entry_safe(ch, tmp_ch, &sdev->rch_list, list)
  2718. __srpt_close_ch(ch);
  2719. spin_unlock_irq(&sdev->spinlock);
  2720. res = wait_event_interruptible(sdev->ch_releaseQ,
  2721. srpt_ch_list_empty(sdev));
  2722. if (res)
  2723. printk(KERN_ERR "%s: interrupted.\n", __func__);
  2724. return 0;
  2725. }
  2726. static struct srpt_port *__srpt_lookup_port(const char *name)
  2727. {
  2728. struct ib_device *dev;
  2729. struct srpt_device *sdev;
  2730. struct srpt_port *sport;
  2731. int i;
  2732. list_for_each_entry(sdev, &srpt_dev_list, list) {
  2733. dev = sdev->device;
  2734. if (!dev)
  2735. continue;
  2736. for (i = 0; i < dev->phys_port_cnt; i++) {
  2737. sport = &sdev->port[i];
  2738. if (!strcmp(sport->port_guid, name))
  2739. return sport;
  2740. }
  2741. }
  2742. return NULL;
  2743. }
  2744. static struct srpt_port *srpt_lookup_port(const char *name)
  2745. {
  2746. struct srpt_port *sport;
  2747. spin_lock(&srpt_dev_lock);
  2748. sport = __srpt_lookup_port(name);
  2749. spin_unlock(&srpt_dev_lock);
  2750. return sport;
  2751. }
  2752. /**
  2753. * srpt_add_one() - Infiniband device addition callback function.
  2754. */
  2755. static void srpt_add_one(struct ib_device *device)
  2756. {
  2757. struct srpt_device *sdev;
  2758. struct srpt_port *sport;
  2759. struct ib_srq_init_attr srq_attr;
  2760. int i;
  2761. pr_debug("device = %p, device->dma_ops = %p\n", device,
  2762. device->dma_ops);
  2763. sdev = kzalloc(sizeof *sdev, GFP_KERNEL);
  2764. if (!sdev)
  2765. goto err;
  2766. sdev->device = device;
  2767. INIT_LIST_HEAD(&sdev->rch_list);
  2768. init_waitqueue_head(&sdev->ch_releaseQ);
  2769. spin_lock_init(&sdev->spinlock);
  2770. if (ib_query_device(device, &sdev->dev_attr))
  2771. goto free_dev;
  2772. sdev->pd = ib_alloc_pd(device);
  2773. if (IS_ERR(sdev->pd))
  2774. goto free_dev;
  2775. sdev->mr = ib_get_dma_mr(sdev->pd, IB_ACCESS_LOCAL_WRITE);
  2776. if (IS_ERR(sdev->mr))
  2777. goto err_pd;
  2778. sdev->srq_size = min(srpt_srq_size, sdev->dev_attr.max_srq_wr);
  2779. srq_attr.event_handler = srpt_srq_event;
  2780. srq_attr.srq_context = (void *)sdev;
  2781. srq_attr.attr.max_wr = sdev->srq_size;
  2782. srq_attr.attr.max_sge = 1;
  2783. srq_attr.attr.srq_limit = 0;
  2784. srq_attr.srq_type = IB_SRQT_BASIC;
  2785. sdev->srq = ib_create_srq(sdev->pd, &srq_attr);
  2786. if (IS_ERR(sdev->srq))
  2787. goto err_mr;
  2788. pr_debug("%s: create SRQ #wr= %d max_allow=%d dev= %s\n",
  2789. __func__, sdev->srq_size, sdev->dev_attr.max_srq_wr,
  2790. device->name);
  2791. if (!srpt_service_guid)
  2792. srpt_service_guid = be64_to_cpu(device->node_guid);
  2793. sdev->cm_id = ib_create_cm_id(device, srpt_cm_handler, sdev);
  2794. if (IS_ERR(sdev->cm_id))
  2795. goto err_srq;
  2796. /* print out target login information */
  2797. pr_debug("Target login info: id_ext=%016llx,ioc_guid=%016llx,"
  2798. "pkey=ffff,service_id=%016llx\n", srpt_service_guid,
  2799. srpt_service_guid, srpt_service_guid);
  2800. /*
  2801. * We do not have a consistent service_id (ie. also id_ext of target_id)
  2802. * to identify this target. We currently use the guid of the first HCA
  2803. * in the system as service_id; therefore, the target_id will change
  2804. * if this HCA is gone bad and replaced by different HCA
  2805. */
  2806. if (ib_cm_listen(sdev->cm_id, cpu_to_be64(srpt_service_guid), 0, NULL))
  2807. goto err_cm;
  2808. INIT_IB_EVENT_HANDLER(&sdev->event_handler, sdev->device,
  2809. srpt_event_handler);
  2810. if (ib_register_event_handler(&sdev->event_handler))
  2811. goto err_cm;
  2812. sdev->ioctx_ring = (struct srpt_recv_ioctx **)
  2813. srpt_alloc_ioctx_ring(sdev, sdev->srq_size,
  2814. sizeof(*sdev->ioctx_ring[0]),
  2815. srp_max_req_size, DMA_FROM_DEVICE);
  2816. if (!sdev->ioctx_ring)
  2817. goto err_event;
  2818. for (i = 0; i < sdev->srq_size; ++i)
  2819. srpt_post_recv(sdev, sdev->ioctx_ring[i]);
  2820. WARN_ON(sdev->device->phys_port_cnt > ARRAY_SIZE(sdev->port));
  2821. for (i = 1; i <= sdev->device->phys_port_cnt; i++) {
  2822. sport = &sdev->port[i - 1];
  2823. sport->sdev = sdev;
  2824. sport->port = i;
  2825. sport->port_attrib.srp_max_rdma_size = DEFAULT_MAX_RDMA_SIZE;
  2826. sport->port_attrib.srp_max_rsp_size = DEFAULT_MAX_RSP_SIZE;
  2827. sport->port_attrib.srp_sq_size = DEF_SRPT_SQ_SIZE;
  2828. INIT_WORK(&sport->work, srpt_refresh_port_work);
  2829. INIT_LIST_HEAD(&sport->port_acl_list);
  2830. spin_lock_init(&sport->port_acl_lock);
  2831. if (srpt_refresh_port(sport)) {
  2832. printk(KERN_ERR "MAD registration failed for %s-%d.\n",
  2833. srpt_sdev_name(sdev), i);
  2834. goto err_ring;
  2835. }
  2836. snprintf(sport->port_guid, sizeof(sport->port_guid),
  2837. "0x%016llx%016llx",
  2838. be64_to_cpu(sport->gid.global.subnet_prefix),
  2839. be64_to_cpu(sport->gid.global.interface_id));
  2840. }
  2841. spin_lock(&srpt_dev_lock);
  2842. list_add_tail(&sdev->list, &srpt_dev_list);
  2843. spin_unlock(&srpt_dev_lock);
  2844. out:
  2845. ib_set_client_data(device, &srpt_client, sdev);
  2846. pr_debug("added %s.\n", device->name);
  2847. return;
  2848. err_ring:
  2849. srpt_free_ioctx_ring((struct srpt_ioctx **)sdev->ioctx_ring, sdev,
  2850. sdev->srq_size, srp_max_req_size,
  2851. DMA_FROM_DEVICE);
  2852. err_event:
  2853. ib_unregister_event_handler(&sdev->event_handler);
  2854. err_cm:
  2855. ib_destroy_cm_id(sdev->cm_id);
  2856. err_srq:
  2857. ib_destroy_srq(sdev->srq);
  2858. err_mr:
  2859. ib_dereg_mr(sdev->mr);
  2860. err_pd:
  2861. ib_dealloc_pd(sdev->pd);
  2862. free_dev:
  2863. kfree(sdev);
  2864. err:
  2865. sdev = NULL;
  2866. printk(KERN_INFO "%s(%s) failed.\n", __func__, device->name);
  2867. goto out;
  2868. }
  2869. /**
  2870. * srpt_remove_one() - InfiniBand device removal callback function.
  2871. */
  2872. static void srpt_remove_one(struct ib_device *device)
  2873. {
  2874. struct srpt_device *sdev;
  2875. int i;
  2876. sdev = ib_get_client_data(device, &srpt_client);
  2877. if (!sdev) {
  2878. printk(KERN_INFO "%s(%s): nothing to do.\n", __func__,
  2879. device->name);
  2880. return;
  2881. }
  2882. srpt_unregister_mad_agent(sdev);
  2883. ib_unregister_event_handler(&sdev->event_handler);
  2884. /* Cancel any work queued by the just unregistered IB event handler. */
  2885. for (i = 0; i < sdev->device->phys_port_cnt; i++)
  2886. cancel_work_sync(&sdev->port[i].work);
  2887. ib_destroy_cm_id(sdev->cm_id);
  2888. /*
  2889. * Unregistering a target must happen after destroying sdev->cm_id
  2890. * such that no new SRP_LOGIN_REQ information units can arrive while
  2891. * destroying the target.
  2892. */
  2893. spin_lock(&srpt_dev_lock);
  2894. list_del(&sdev->list);
  2895. spin_unlock(&srpt_dev_lock);
  2896. srpt_release_sdev(sdev);
  2897. ib_destroy_srq(sdev->srq);
  2898. ib_dereg_mr(sdev->mr);
  2899. ib_dealloc_pd(sdev->pd);
  2900. srpt_free_ioctx_ring((struct srpt_ioctx **)sdev->ioctx_ring, sdev,
  2901. sdev->srq_size, srp_max_req_size, DMA_FROM_DEVICE);
  2902. sdev->ioctx_ring = NULL;
  2903. kfree(sdev);
  2904. }
  2905. static struct ib_client srpt_client = {
  2906. .name = DRV_NAME,
  2907. .add = srpt_add_one,
  2908. .remove = srpt_remove_one
  2909. };
  2910. static int srpt_check_true(struct se_portal_group *se_tpg)
  2911. {
  2912. return 1;
  2913. }
  2914. static int srpt_check_false(struct se_portal_group *se_tpg)
  2915. {
  2916. return 0;
  2917. }
  2918. static char *srpt_get_fabric_name(void)
  2919. {
  2920. return "srpt";
  2921. }
  2922. static u8 srpt_get_fabric_proto_ident(struct se_portal_group *se_tpg)
  2923. {
  2924. return SCSI_TRANSPORTID_PROTOCOLID_SRP;
  2925. }
  2926. static char *srpt_get_fabric_wwn(struct se_portal_group *tpg)
  2927. {
  2928. struct srpt_port *sport = container_of(tpg, struct srpt_port, port_tpg_1);
  2929. return sport->port_guid;
  2930. }
  2931. static u16 srpt_get_tag(struct se_portal_group *tpg)
  2932. {
  2933. return 1;
  2934. }
  2935. static u32 srpt_get_default_depth(struct se_portal_group *se_tpg)
  2936. {
  2937. return 1;
  2938. }
  2939. static u32 srpt_get_pr_transport_id(struct se_portal_group *se_tpg,
  2940. struct se_node_acl *se_nacl,
  2941. struct t10_pr_registration *pr_reg,
  2942. int *format_code, unsigned char *buf)
  2943. {
  2944. struct srpt_node_acl *nacl;
  2945. struct spc_rdma_transport_id *tr_id;
  2946. nacl = container_of(se_nacl, struct srpt_node_acl, nacl);
  2947. tr_id = (void *)buf;
  2948. tr_id->protocol_identifier = SCSI_TRANSPORTID_PROTOCOLID_SRP;
  2949. memcpy(tr_id->i_port_id, nacl->i_port_id, sizeof(tr_id->i_port_id));
  2950. return sizeof(*tr_id);
  2951. }
  2952. static u32 srpt_get_pr_transport_id_len(struct se_portal_group *se_tpg,
  2953. struct se_node_acl *se_nacl,
  2954. struct t10_pr_registration *pr_reg,
  2955. int *format_code)
  2956. {
  2957. *format_code = 0;
  2958. return sizeof(struct spc_rdma_transport_id);
  2959. }
  2960. static char *srpt_parse_pr_out_transport_id(struct se_portal_group *se_tpg,
  2961. const char *buf, u32 *out_tid_len,
  2962. char **port_nexus_ptr)
  2963. {
  2964. struct spc_rdma_transport_id *tr_id;
  2965. *port_nexus_ptr = NULL;
  2966. *out_tid_len = sizeof(struct spc_rdma_transport_id);
  2967. tr_id = (void *)buf;
  2968. return (char *)tr_id->i_port_id;
  2969. }
  2970. static struct se_node_acl *srpt_alloc_fabric_acl(struct se_portal_group *se_tpg)
  2971. {
  2972. struct srpt_node_acl *nacl;
  2973. nacl = kzalloc(sizeof(struct srpt_node_acl), GFP_KERNEL);
  2974. if (!nacl) {
  2975. printk(KERN_ERR "Unable to allocate struct srpt_node_acl\n");
  2976. return NULL;
  2977. }
  2978. return &nacl->nacl;
  2979. }
  2980. static void srpt_release_fabric_acl(struct se_portal_group *se_tpg,
  2981. struct se_node_acl *se_nacl)
  2982. {
  2983. struct srpt_node_acl *nacl;
  2984. nacl = container_of(se_nacl, struct srpt_node_acl, nacl);
  2985. kfree(nacl);
  2986. }
  2987. static u32 srpt_tpg_get_inst_index(struct se_portal_group *se_tpg)
  2988. {
  2989. return 1;
  2990. }
  2991. static void srpt_release_cmd(struct se_cmd *se_cmd)
  2992. {
  2993. struct srpt_send_ioctx *ioctx = container_of(se_cmd,
  2994. struct srpt_send_ioctx, cmd);
  2995. struct srpt_rdma_ch *ch = ioctx->ch;
  2996. unsigned long flags;
  2997. WARN_ON(ioctx->state != SRPT_STATE_DONE);
  2998. WARN_ON(ioctx->mapped_sg_count != 0);
  2999. if (ioctx->n_rbuf > 1) {
  3000. kfree(ioctx->rbufs);
  3001. ioctx->rbufs = NULL;
  3002. ioctx->n_rbuf = 0;
  3003. }
  3004. spin_lock_irqsave(&ch->spinlock, flags);
  3005. list_add(&ioctx->free_list, &ch->free_list);
  3006. spin_unlock_irqrestore(&ch->spinlock, flags);
  3007. }
  3008. /**
  3009. * srpt_close_session() - Forcibly close a session.
  3010. *
  3011. * Callback function invoked by the TCM core to clean up sessions associated
  3012. * with a node ACL when the user invokes
  3013. * rmdir /sys/kernel/config/target/$driver/$port/$tpg/acls/$i_port_id
  3014. */
  3015. static void srpt_close_session(struct se_session *se_sess)
  3016. {
  3017. DECLARE_COMPLETION_ONSTACK(release_done);
  3018. struct srpt_rdma_ch *ch;
  3019. struct srpt_device *sdev;
  3020. int res;
  3021. ch = se_sess->fabric_sess_ptr;
  3022. WARN_ON(ch->sess != se_sess);
  3023. pr_debug("ch %p state %d\n", ch, srpt_get_ch_state(ch));
  3024. sdev = ch->sport->sdev;
  3025. spin_lock_irq(&sdev->spinlock);
  3026. BUG_ON(ch->release_done);
  3027. ch->release_done = &release_done;
  3028. __srpt_close_ch(ch);
  3029. spin_unlock_irq(&sdev->spinlock);
  3030. res = wait_for_completion_timeout(&release_done, 60 * HZ);
  3031. WARN_ON(res <= 0);
  3032. }
  3033. /**
  3034. * srpt_sess_get_index() - Return the value of scsiAttIntrPortIndex (SCSI-MIB).
  3035. *
  3036. * A quote from RFC 4455 (SCSI-MIB) about this MIB object:
  3037. * This object represents an arbitrary integer used to uniquely identify a
  3038. * particular attached remote initiator port to a particular SCSI target port
  3039. * within a particular SCSI target device within a particular SCSI instance.
  3040. */
  3041. static u32 srpt_sess_get_index(struct se_session *se_sess)
  3042. {
  3043. return 0;
  3044. }
  3045. static void srpt_set_default_node_attrs(struct se_node_acl *nacl)
  3046. {
  3047. }
  3048. static u32 srpt_get_task_tag(struct se_cmd *se_cmd)
  3049. {
  3050. struct srpt_send_ioctx *ioctx;
  3051. ioctx = container_of(se_cmd, struct srpt_send_ioctx, cmd);
  3052. return ioctx->tag;
  3053. }
  3054. /* Note: only used from inside debug printk's by the TCM core. */
  3055. static int srpt_get_tcm_cmd_state(struct se_cmd *se_cmd)
  3056. {
  3057. struct srpt_send_ioctx *ioctx;
  3058. ioctx = container_of(se_cmd, struct srpt_send_ioctx, cmd);
  3059. return srpt_get_cmd_state(ioctx);
  3060. }
  3061. /**
  3062. * srpt_parse_i_port_id() - Parse an initiator port ID.
  3063. * @name: ASCII representation of a 128-bit initiator port ID.
  3064. * @i_port_id: Binary 128-bit port ID.
  3065. */
  3066. static int srpt_parse_i_port_id(u8 i_port_id[16], const char *name)
  3067. {
  3068. const char *p;
  3069. unsigned len, count, leading_zero_bytes;
  3070. int ret, rc;
  3071. p = name;
  3072. if (strnicmp(p, "0x", 2) == 0)
  3073. p += 2;
  3074. ret = -EINVAL;
  3075. len = strlen(p);
  3076. if (len % 2)
  3077. goto out;
  3078. count = min(len / 2, 16U);
  3079. leading_zero_bytes = 16 - count;
  3080. memset(i_port_id, 0, leading_zero_bytes);
  3081. rc = hex2bin(i_port_id + leading_zero_bytes, p, count);
  3082. if (rc < 0)
  3083. pr_debug("hex2bin failed for srpt_parse_i_port_id: %d\n", rc);
  3084. ret = 0;
  3085. out:
  3086. return ret;
  3087. }
  3088. /*
  3089. * configfs callback function invoked for
  3090. * mkdir /sys/kernel/config/target/$driver/$port/$tpg/acls/$i_port_id
  3091. */
  3092. static struct se_node_acl *srpt_make_nodeacl(struct se_portal_group *tpg,
  3093. struct config_group *group,
  3094. const char *name)
  3095. {
  3096. struct srpt_port *sport = container_of(tpg, struct srpt_port, port_tpg_1);
  3097. struct se_node_acl *se_nacl, *se_nacl_new;
  3098. struct srpt_node_acl *nacl;
  3099. int ret = 0;
  3100. u32 nexus_depth = 1;
  3101. u8 i_port_id[16];
  3102. if (srpt_parse_i_port_id(i_port_id, name) < 0) {
  3103. printk(KERN_ERR "invalid initiator port ID %s\n", name);
  3104. ret = -EINVAL;
  3105. goto err;
  3106. }
  3107. se_nacl_new = srpt_alloc_fabric_acl(tpg);
  3108. if (!se_nacl_new) {
  3109. ret = -ENOMEM;
  3110. goto err;
  3111. }
  3112. /*
  3113. * nacl_new may be released by core_tpg_add_initiator_node_acl()
  3114. * when converting a node ACL from demo mode to explict
  3115. */
  3116. se_nacl = core_tpg_add_initiator_node_acl(tpg, se_nacl_new, name,
  3117. nexus_depth);
  3118. if (IS_ERR(se_nacl)) {
  3119. ret = PTR_ERR(se_nacl);
  3120. goto err;
  3121. }
  3122. /* Locate our struct srpt_node_acl and set sdev and i_port_id. */
  3123. nacl = container_of(se_nacl, struct srpt_node_acl, nacl);
  3124. memcpy(&nacl->i_port_id[0], &i_port_id[0], 16);
  3125. nacl->sport = sport;
  3126. spin_lock_irq(&sport->port_acl_lock);
  3127. list_add_tail(&nacl->list, &sport->port_acl_list);
  3128. spin_unlock_irq(&sport->port_acl_lock);
  3129. return se_nacl;
  3130. err:
  3131. return ERR_PTR(ret);
  3132. }
  3133. /*
  3134. * configfs callback function invoked for
  3135. * rmdir /sys/kernel/config/target/$driver/$port/$tpg/acls/$i_port_id
  3136. */
  3137. static void srpt_drop_nodeacl(struct se_node_acl *se_nacl)
  3138. {
  3139. struct srpt_node_acl *nacl;
  3140. struct srpt_device *sdev;
  3141. struct srpt_port *sport;
  3142. nacl = container_of(se_nacl, struct srpt_node_acl, nacl);
  3143. sport = nacl->sport;
  3144. sdev = sport->sdev;
  3145. spin_lock_irq(&sport->port_acl_lock);
  3146. list_del(&nacl->list);
  3147. spin_unlock_irq(&sport->port_acl_lock);
  3148. core_tpg_del_initiator_node_acl(&sport->port_tpg_1, se_nacl, 1);
  3149. srpt_release_fabric_acl(NULL, se_nacl);
  3150. }
  3151. static ssize_t srpt_tpg_attrib_show_srp_max_rdma_size(
  3152. struct se_portal_group *se_tpg,
  3153. char *page)
  3154. {
  3155. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3156. return sprintf(page, "%u\n", sport->port_attrib.srp_max_rdma_size);
  3157. }
  3158. static ssize_t srpt_tpg_attrib_store_srp_max_rdma_size(
  3159. struct se_portal_group *se_tpg,
  3160. const char *page,
  3161. size_t count)
  3162. {
  3163. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3164. unsigned long val;
  3165. int ret;
  3166. ret = kstrtoul(page, 0, &val);
  3167. if (ret < 0) {
  3168. pr_err("kstrtoul() failed with ret: %d\n", ret);
  3169. return -EINVAL;
  3170. }
  3171. if (val > MAX_SRPT_RDMA_SIZE) {
  3172. pr_err("val: %lu exceeds MAX_SRPT_RDMA_SIZE: %d\n", val,
  3173. MAX_SRPT_RDMA_SIZE);
  3174. return -EINVAL;
  3175. }
  3176. if (val < DEFAULT_MAX_RDMA_SIZE) {
  3177. pr_err("val: %lu smaller than DEFAULT_MAX_RDMA_SIZE: %d\n",
  3178. val, DEFAULT_MAX_RDMA_SIZE);
  3179. return -EINVAL;
  3180. }
  3181. sport->port_attrib.srp_max_rdma_size = val;
  3182. return count;
  3183. }
  3184. TF_TPG_ATTRIB_ATTR(srpt, srp_max_rdma_size, S_IRUGO | S_IWUSR);
  3185. static ssize_t srpt_tpg_attrib_show_srp_max_rsp_size(
  3186. struct se_portal_group *se_tpg,
  3187. char *page)
  3188. {
  3189. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3190. return sprintf(page, "%u\n", sport->port_attrib.srp_max_rsp_size);
  3191. }
  3192. static ssize_t srpt_tpg_attrib_store_srp_max_rsp_size(
  3193. struct se_portal_group *se_tpg,
  3194. const char *page,
  3195. size_t count)
  3196. {
  3197. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3198. unsigned long val;
  3199. int ret;
  3200. ret = kstrtoul(page, 0, &val);
  3201. if (ret < 0) {
  3202. pr_err("kstrtoul() failed with ret: %d\n", ret);
  3203. return -EINVAL;
  3204. }
  3205. if (val > MAX_SRPT_RSP_SIZE) {
  3206. pr_err("val: %lu exceeds MAX_SRPT_RSP_SIZE: %d\n", val,
  3207. MAX_SRPT_RSP_SIZE);
  3208. return -EINVAL;
  3209. }
  3210. if (val < MIN_MAX_RSP_SIZE) {
  3211. pr_err("val: %lu smaller than MIN_MAX_RSP_SIZE: %d\n", val,
  3212. MIN_MAX_RSP_SIZE);
  3213. return -EINVAL;
  3214. }
  3215. sport->port_attrib.srp_max_rsp_size = val;
  3216. return count;
  3217. }
  3218. TF_TPG_ATTRIB_ATTR(srpt, srp_max_rsp_size, S_IRUGO | S_IWUSR);
  3219. static ssize_t srpt_tpg_attrib_show_srp_sq_size(
  3220. struct se_portal_group *se_tpg,
  3221. char *page)
  3222. {
  3223. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3224. return sprintf(page, "%u\n", sport->port_attrib.srp_sq_size);
  3225. }
  3226. static ssize_t srpt_tpg_attrib_store_srp_sq_size(
  3227. struct se_portal_group *se_tpg,
  3228. const char *page,
  3229. size_t count)
  3230. {
  3231. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3232. unsigned long val;
  3233. int ret;
  3234. ret = kstrtoul(page, 0, &val);
  3235. if (ret < 0) {
  3236. pr_err("kstrtoul() failed with ret: %d\n", ret);
  3237. return -EINVAL;
  3238. }
  3239. if (val > MAX_SRPT_SRQ_SIZE) {
  3240. pr_err("val: %lu exceeds MAX_SRPT_SRQ_SIZE: %d\n", val,
  3241. MAX_SRPT_SRQ_SIZE);
  3242. return -EINVAL;
  3243. }
  3244. if (val < MIN_SRPT_SRQ_SIZE) {
  3245. pr_err("val: %lu smaller than MIN_SRPT_SRQ_SIZE: %d\n", val,
  3246. MIN_SRPT_SRQ_SIZE);
  3247. return -EINVAL;
  3248. }
  3249. sport->port_attrib.srp_sq_size = val;
  3250. return count;
  3251. }
  3252. TF_TPG_ATTRIB_ATTR(srpt, srp_sq_size, S_IRUGO | S_IWUSR);
  3253. static struct configfs_attribute *srpt_tpg_attrib_attrs[] = {
  3254. &srpt_tpg_attrib_srp_max_rdma_size.attr,
  3255. &srpt_tpg_attrib_srp_max_rsp_size.attr,
  3256. &srpt_tpg_attrib_srp_sq_size.attr,
  3257. NULL,
  3258. };
  3259. static ssize_t srpt_tpg_show_enable(
  3260. struct se_portal_group *se_tpg,
  3261. char *page)
  3262. {
  3263. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3264. return snprintf(page, PAGE_SIZE, "%d\n", (sport->enabled) ? 1: 0);
  3265. }
  3266. static ssize_t srpt_tpg_store_enable(
  3267. struct se_portal_group *se_tpg,
  3268. const char *page,
  3269. size_t count)
  3270. {
  3271. struct srpt_port *sport = container_of(se_tpg, struct srpt_port, port_tpg_1);
  3272. unsigned long tmp;
  3273. int ret;
  3274. ret = kstrtoul(page, 0, &tmp);
  3275. if (ret < 0) {
  3276. printk(KERN_ERR "Unable to extract srpt_tpg_store_enable\n");
  3277. return -EINVAL;
  3278. }
  3279. if ((tmp != 0) && (tmp != 1)) {
  3280. printk(KERN_ERR "Illegal value for srpt_tpg_store_enable: %lu\n", tmp);
  3281. return -EINVAL;
  3282. }
  3283. if (tmp == 1)
  3284. sport->enabled = true;
  3285. else
  3286. sport->enabled = false;
  3287. return count;
  3288. }
  3289. TF_TPG_BASE_ATTR(srpt, enable, S_IRUGO | S_IWUSR);
  3290. static struct configfs_attribute *srpt_tpg_attrs[] = {
  3291. &srpt_tpg_enable.attr,
  3292. NULL,
  3293. };
  3294. /**
  3295. * configfs callback invoked for
  3296. * mkdir /sys/kernel/config/target/$driver/$port/$tpg
  3297. */
  3298. static struct se_portal_group *srpt_make_tpg(struct se_wwn *wwn,
  3299. struct config_group *group,
  3300. const char *name)
  3301. {
  3302. struct srpt_port *sport = container_of(wwn, struct srpt_port, port_wwn);
  3303. int res;
  3304. /* Initialize sport->port_wwn and sport->port_tpg_1 */
  3305. res = core_tpg_register(&srpt_target->tf_ops, &sport->port_wwn,
  3306. &sport->port_tpg_1, sport, TRANSPORT_TPG_TYPE_NORMAL);
  3307. if (res)
  3308. return ERR_PTR(res);
  3309. return &sport->port_tpg_1;
  3310. }
  3311. /**
  3312. * configfs callback invoked for
  3313. * rmdir /sys/kernel/config/target/$driver/$port/$tpg
  3314. */
  3315. static void srpt_drop_tpg(struct se_portal_group *tpg)
  3316. {
  3317. struct srpt_port *sport = container_of(tpg,
  3318. struct srpt_port, port_tpg_1);
  3319. sport->enabled = false;
  3320. core_tpg_deregister(&sport->port_tpg_1);
  3321. }
  3322. /**
  3323. * configfs callback invoked for
  3324. * mkdir /sys/kernel/config/target/$driver/$port
  3325. */
  3326. static struct se_wwn *srpt_make_tport(struct target_fabric_configfs *tf,
  3327. struct config_group *group,
  3328. const char *name)
  3329. {
  3330. struct srpt_port *sport;
  3331. int ret;
  3332. sport = srpt_lookup_port(name);
  3333. pr_debug("make_tport(%s)\n", name);
  3334. ret = -EINVAL;
  3335. if (!sport)
  3336. goto err;
  3337. return &sport->port_wwn;
  3338. err:
  3339. return ERR_PTR(ret);
  3340. }
  3341. /**
  3342. * configfs callback invoked for
  3343. * rmdir /sys/kernel/config/target/$driver/$port
  3344. */
  3345. static void srpt_drop_tport(struct se_wwn *wwn)
  3346. {
  3347. struct srpt_port *sport = container_of(wwn, struct srpt_port, port_wwn);
  3348. pr_debug("drop_tport(%s\n", config_item_name(&sport->port_wwn.wwn_group.cg_item));
  3349. }
  3350. static ssize_t srpt_wwn_show_attr_version(struct target_fabric_configfs *tf,
  3351. char *buf)
  3352. {
  3353. return scnprintf(buf, PAGE_SIZE, "%s\n", DRV_VERSION);
  3354. }
  3355. TF_WWN_ATTR_RO(srpt, version);
  3356. static struct configfs_attribute *srpt_wwn_attrs[] = {
  3357. &srpt_wwn_version.attr,
  3358. NULL,
  3359. };
  3360. static struct target_core_fabric_ops srpt_template = {
  3361. .get_fabric_name = srpt_get_fabric_name,
  3362. .get_fabric_proto_ident = srpt_get_fabric_proto_ident,
  3363. .tpg_get_wwn = srpt_get_fabric_wwn,
  3364. .tpg_get_tag = srpt_get_tag,
  3365. .tpg_get_default_depth = srpt_get_default_depth,
  3366. .tpg_get_pr_transport_id = srpt_get_pr_transport_id,
  3367. .tpg_get_pr_transport_id_len = srpt_get_pr_transport_id_len,
  3368. .tpg_parse_pr_out_transport_id = srpt_parse_pr_out_transport_id,
  3369. .tpg_check_demo_mode = srpt_check_false,
  3370. .tpg_check_demo_mode_cache = srpt_check_true,
  3371. .tpg_check_demo_mode_write_protect = srpt_check_true,
  3372. .tpg_check_prod_mode_write_protect = srpt_check_false,
  3373. .tpg_alloc_fabric_acl = srpt_alloc_fabric_acl,
  3374. .tpg_release_fabric_acl = srpt_release_fabric_acl,
  3375. .tpg_get_inst_index = srpt_tpg_get_inst_index,
  3376. .release_cmd = srpt_release_cmd,
  3377. .check_stop_free = srpt_check_stop_free,
  3378. .shutdown_session = srpt_shutdown_session,
  3379. .close_session = srpt_close_session,
  3380. .sess_get_index = srpt_sess_get_index,
  3381. .sess_get_initiator_sid = NULL,
  3382. .write_pending = srpt_write_pending,
  3383. .write_pending_status = srpt_write_pending_status,
  3384. .set_default_node_attributes = srpt_set_default_node_attrs,
  3385. .get_task_tag = srpt_get_task_tag,
  3386. .get_cmd_state = srpt_get_tcm_cmd_state,
  3387. .queue_data_in = srpt_queue_data_in,
  3388. .queue_status = srpt_queue_status,
  3389. .queue_tm_rsp = srpt_queue_tm_rsp,
  3390. .aborted_task = srpt_aborted_task,
  3391. /*
  3392. * Setup function pointers for generic logic in
  3393. * target_core_fabric_configfs.c
  3394. */
  3395. .fabric_make_wwn = srpt_make_tport,
  3396. .fabric_drop_wwn = srpt_drop_tport,
  3397. .fabric_make_tpg = srpt_make_tpg,
  3398. .fabric_drop_tpg = srpt_drop_tpg,
  3399. .fabric_post_link = NULL,
  3400. .fabric_pre_unlink = NULL,
  3401. .fabric_make_np = NULL,
  3402. .fabric_drop_np = NULL,
  3403. .fabric_make_nodeacl = srpt_make_nodeacl,
  3404. .fabric_drop_nodeacl = srpt_drop_nodeacl,
  3405. };
  3406. /**
  3407. * srpt_init_module() - Kernel module initialization.
  3408. *
  3409. * Note: Since ib_register_client() registers callback functions, and since at
  3410. * least one of these callback functions (srpt_add_one()) calls target core
  3411. * functions, this driver must be registered with the target core before
  3412. * ib_register_client() is called.
  3413. */
  3414. static int __init srpt_init_module(void)
  3415. {
  3416. int ret;
  3417. ret = -EINVAL;
  3418. if (srp_max_req_size < MIN_MAX_REQ_SIZE) {
  3419. printk(KERN_ERR "invalid value %d for kernel module parameter"
  3420. " srp_max_req_size -- must be at least %d.\n",
  3421. srp_max_req_size, MIN_MAX_REQ_SIZE);
  3422. goto out;
  3423. }
  3424. if (srpt_srq_size < MIN_SRPT_SRQ_SIZE
  3425. || srpt_srq_size > MAX_SRPT_SRQ_SIZE) {
  3426. printk(KERN_ERR "invalid value %d for kernel module parameter"
  3427. " srpt_srq_size -- must be in the range [%d..%d].\n",
  3428. srpt_srq_size, MIN_SRPT_SRQ_SIZE, MAX_SRPT_SRQ_SIZE);
  3429. goto out;
  3430. }
  3431. srpt_target = target_fabric_configfs_init(THIS_MODULE, "srpt");
  3432. if (IS_ERR(srpt_target)) {
  3433. printk(KERN_ERR "couldn't register\n");
  3434. ret = PTR_ERR(srpt_target);
  3435. goto out;
  3436. }
  3437. srpt_target->tf_ops = srpt_template;
  3438. /*
  3439. * Set up default attribute lists.
  3440. */
  3441. srpt_target->tf_cit_tmpl.tfc_wwn_cit.ct_attrs = srpt_wwn_attrs;
  3442. srpt_target->tf_cit_tmpl.tfc_tpg_base_cit.ct_attrs = srpt_tpg_attrs;
  3443. srpt_target->tf_cit_tmpl.tfc_tpg_attrib_cit.ct_attrs = srpt_tpg_attrib_attrs;
  3444. srpt_target->tf_cit_tmpl.tfc_tpg_param_cit.ct_attrs = NULL;
  3445. srpt_target->tf_cit_tmpl.tfc_tpg_np_base_cit.ct_attrs = NULL;
  3446. srpt_target->tf_cit_tmpl.tfc_tpg_nacl_base_cit.ct_attrs = NULL;
  3447. srpt_target->tf_cit_tmpl.tfc_tpg_nacl_attrib_cit.ct_attrs = NULL;
  3448. srpt_target->tf_cit_tmpl.tfc_tpg_nacl_auth_cit.ct_attrs = NULL;
  3449. srpt_target->tf_cit_tmpl.tfc_tpg_nacl_param_cit.ct_attrs = NULL;
  3450. ret = target_fabric_configfs_register(srpt_target);
  3451. if (ret < 0) {
  3452. printk(KERN_ERR "couldn't register\n");
  3453. goto out_free_target;
  3454. }
  3455. ret = ib_register_client(&srpt_client);
  3456. if (ret) {
  3457. printk(KERN_ERR "couldn't register IB client\n");
  3458. goto out_unregister_target;
  3459. }
  3460. return 0;
  3461. out_unregister_target:
  3462. target_fabric_configfs_deregister(srpt_target);
  3463. srpt_target = NULL;
  3464. out_free_target:
  3465. if (srpt_target)
  3466. target_fabric_configfs_free(srpt_target);
  3467. out:
  3468. return ret;
  3469. }
  3470. static void __exit srpt_cleanup_module(void)
  3471. {
  3472. ib_unregister_client(&srpt_client);
  3473. target_fabric_configfs_deregister(srpt_target);
  3474. srpt_target = NULL;
  3475. }
  3476. module_init(srpt_init_module);
  3477. module_exit(srpt_cleanup_module);